Showing posts with label CCRES - BIOMASS. Show all posts
Showing posts with label CCRES - BIOMASS. Show all posts
Saturday, March 19, 2016
ALL ABOUT ALGAE AND THE ORIGIN OF EUKARYOTIC CELLS
ALGAE AND THE ORIGIN OF EUKARYOTIC CELLS
Life began about 3.5 billion years ago in the oceans with the appearance of prokaryotes.
The oldest reliable date for the appearance of the eukaryotes is about 1.9 billion years ago, when the first members of a group of unicellular organisms called acritarchs appear in the fossil record in China.
Acritarchs …
Are probably the remains of a group of ancient eukaryotes
Were plankton
Some resemble dinoflagellates while others resemble green algae
Their relationship among living organisms is uncertain
http://www.ucl.ac.uk/GeolSci/micropal/acritarch.html
http://www.geo.arizona.edu/palynology/ppacrtrc.html
Eukaryotic cells came into existence probably by a process called endosymbiosis.
Mitochondria arose first, as an early eukaryotic cell engulfed but did not digest a bacterium capable of aerobic respiration. The two organisms lived together, one inside the other, and both benefited.
Fungi, plants and animals are all probably derived from protists.
Fungi and animals are eukaryotes organisms that lack plastids.
Another line of evolution, one that had mitochondria, entered another endosymbiosis with a photosynthetic cyanobacterium, which later evolved into a chloroplast.
This line gave rise to algae including green algae, which in turn produced true plants, the embryophytes.
Several clades exist that still have some extant members whose plastids have numerous prokaryotic characters. Chloroplasts of red algae especially resemble cyanobacteria.
The kingdom Protista contains eukaryotes that cannot be assigned with certainty to other kingdoms
The kingdom Protista is an artificial grouping and classification does not represent evolutionary relationships.
This kingdom is also known as Protoctista.
Protists covered in this course are those photosynthetic organisms that function like plants in ecosystems.
They are the "grass of the ocean".
Protists to be studied include:
Algae: photosynthetic organisms studied by phycologists.
Slime molds and oomycetes: heterotrophic organisms that are traditionally studied by mycologists, although these organisms are not fungi.
Another group of protists not included in this course are the ciliates, flagellates, and other heterotrophs.
The phylogenetic relationship among the different groups of protists is controversial, e.g. the relationship between the green and brown algae.
ORIGIN OF EUKARYOTIC CELLS
DNA Structure
In prokaryotes, proteins do not surround the DNA. Its numerous negative charges are neutralized by calcium ions. In eukaryotes, the DNA is packaged with histones forming nucleosomes. The DNA condenses into chromosomes.
The genome is a short circle of DNA containing about 3,000 genes, and lack introns. In eukaryotes, the DNA molecule carries thousands of genes. The chromosomes of eukaryotes have a homologous and never occur as a single chromosome in normal circumstances. Eukaryotic genes have introns, which do not code for any type of RNA.
Nuclear structure and division
Prokaryotic cells lack nucleus. The DNA circle is attached to the plasma membrane. As the cell grows and the plasma membrane expands, the two daughter DNA molecules are separated.
The nuclei of plants, animals and fungi are very similar in structure, metabolism, mitosis and meiosis. Apparently these three clades diverged after the nucleus had achieved a high level of complexity.
In eukaryotes, most of the DNA is found in the nucleus.
The nucleus is surround by two double-layered membranes with nuclear pores.
A nucleolus is present.
The nuclei are typically haploid or diploid. Mitosis assures that each daughter cell receives one of each type of chromosome to maintain the species number of chromosomes.
Meiosis usually occurs as part of sexual reproduction. The pairing of paternal and maternal homologous chromosomes, followed by crossing over and genetic recombination assures genetic diversity.
Some groups of organisms have a unique mitotic process that may represent an earlier divergence in the history of eukaryotes.
Organelles
Prokaryotes lack membrane bound organelles. They have ribosomes and storage granules, which are not-membrane bound organelles.
Photosynthetic prokaryotes have folded plasma membrane that projects into the cytoplasm.
Eukaryotes have membrane bound organelles that compartmentalize the cell and perform different functions simultaneously.
Ribosomes of prokaryotes are 70S, being smaller and denser than the 80S ribosomes of eukaryotes.
Flagella and cilia are uniform in eukaryotes having a 9 + 2 arrangement of microtubules. A few prokaryotes have flagella, and never have the 9+2 arrangement. They are not composed of microtubules or tubulin.
Endosymbiotic Theory.
This hypothesis attempts to explain the origin of eukaryotic organelles, mitochondria and chloroplasts.
In 1905, K. C. Mereschkowsky had speculated that plastids were prokaryotes living inside eukaryotic cells.
In the 1960s, plastids and mitochondria were discovered to have their own DNA and ribosomes, both with prokaryotic features.
Plastids and mitochondria divide similarly to prokaryotes.
They lack microtubules.
Their DNA is small and circular, contains a small number of genes, and is organized like prokaryotic DNA.
Their ribosomes are sensitive to the same antibiotics that interfere with prokaryotic ribosomes.
Chloroplasts and mitochondria could have originated from bacteria that were phagocytized by a large heterotrophic prokaryote.
Mitochondria could have derived from an aerobic prokaryote that was ingested but not digested.
Chloroplasts could have been derived from a photosynthetic prokaryote, probably a cyanobacterium.
Chloroplasts originated several times.
An endosymbionts is an organism that lives within another dissimilar organism.
These bacteria were then adopted as endosymbionts rather than being digested.
With time these endosymbionts became simplified and specialized to perform only photosynthesis or respiration.
The DNA of the endosymbionts and many or its functions were transferred to the nuclear DNA.
The nuclear membrane could have originated from an infolding of the plasma membrane of a prokaryote.
Prokaryotes have their single circular chromosome attached to the plasma membrane.
Infolding of other portions of the plasma membrane may have given origin to the ER and Golgi complex.
Primary endosymbiosis gave rise to a clade containing red algae, green algae and a small group called glaucophytes.
Glaucophyte chloroplasts still produce a thin film of cyanobacterial wall between themselves and the cell.
Red algal chloroplasts have chlorophyll a but not b, and the cyanobacterial pigment phycobilin, organized into particles called phycobilisomes.
Green algal cells do not have traces of bacterial wall or phycobilin, but instead have chlorophylls a and b, and carotenoid accessory pigments, all of which are similar to chloroplasts in true plants.
Chloroplasts have chlorophyll a but not bacteriochlorophyll. This suggests that the cyanobacteria and not photosynthetic bacteria is the ancestor of chloroplasts.
Prochlorophytes are a type of cyanobacteria that have both chlorophyll a and b, and lack phycobilins.
The prochlorophytes Prochloron and Prochlorothryx are closely related to chloroplasts and are thought to have a common ancestor. Prochloron exists as an obligate endosymbiont of marine invertebrates called ascidians.
Secondary endosymbiosis happened when a eukaryote engulfed another eukaryote.
Euglenoids originated when a eukaryote engulfed a green alga. The green alga has become so reduced that only the chloroplast remains.
Heterokonts have two different flagella of different length and ornamentation. They appear to be monophyletic.
One flagellum is long and ornamented with distinctive hairs (tinsels).
The other flagellum is shorter and smooth (whiplash).
Heterokonts are also known as stramenopiles.
Molecular sequence and these unique flagella provide evidence for the close relationship of oomycetes, chrysophytes, diatoms, and brown algae.
They were involved in one or several endosymbiosis with entire cells of red algae.
Heterokonts appear to have diversified and then some entered into secondary endosymbiosis and became photosynthetic, whereas others did not. Lack of chloroplasts in these heterokonts is an ancestral condition.
Pigmented heterokonts may have originated through one or several secondary endosymbioses.
Most pigmented heterokonts have chlorophyll a and c, lack phycobilins, and have four chloroplast membranes instead of two as in red algae, green algae, glaucophytes and plants. Some have the remnant of red alga nucleus called the nucleopmorph, which still contains a nuclear envelope and a few genes.
These cells have four types of DNA; heterokont eukaryotic nucleus, red alga eukaryotic nucleomorph, chloroplast prokaryotic DNA circles, a mitochondrion prokaryotic DNA circles.
Types of cytokinesis
Several types of cytokinesis occur in algae.
Cytokinesis may occur by furrowing or by cell plate formation.
In almost all algae with wall, cytokinesis is similar to that of plants.
In some green algae, the phycoplast consists of microtubules oriented parallel to the plane where the new wall will form, which is perpendicular to the orientation of the spindle.
Embryophytes arose from green algae that divide with a phragmoplast rather than a phycoplast.
CHARACTERISTICS OF VARIOUS GROUPS OF ALGAE
The following notes are base on Raven et al, 8th Edition, and Mauseth.
DIVISION CHLOROPHYTA
Also known as green algae.
A diverse group of about 17,000 species.
Most chlorophytes are aquatic, but some green algae can live on the surface of snow, on tree trunks, in soils, or symbiotically with protozoans, hydras or lichen-forming fungi.
Chlorophytes range in size from microscopic to quite large: unicellular, colonies, branched and unbranched filaments, thalloid.
Green algae have chlorophylls a and b and store starch as a food reserve inside their plastids.
Most green algae have firm cell walls composed of cellulose, hemicellulose and peptic substances.
The flagellated reproductive cells of some green algae resemble that of plant sperm.
Based on studies of mitosis, cytokinesis, reproductive cells and molecular similarities, the green algae have been divided into several classes. Three of these classes will be studied here:
Body construction in Green Algae
Motile colonies: aggregation of unspecialized cells; flagella present: this is considered to be an ancestral condition, a plesiomorphy.
Nonmotile colonies: similar to the motile colonies but cells have lost their flagella; this is considered an apomorphy.
Filamentous body: cells divide transversally, but sometimes producing a branch; some parts of their body may become specialized, e.g. holdfast for attachment.
Membranous body: cell division occurs in two planes forming a sheet of cells.
Parenchymatous body: cell division occurs in three planes; cells are interconnected by plasmodesmata and true parenchyma tissue is formed.
Coenocytic or siphonous body: karyokinesis occurs without cytokinesis resulting in a large multinucleate cell; the cell remains unspecialized.
Life cycles in Green Algae
The alternation of heteromorphic generations in angiosperms can be traced to green algae.
Monobiontic species consists of only one free-living generation. In some, the haploid phase represents the individual; in others, it is the diploid phase.
In dibiontic species, both stages of the alternation of generations are multicellular
The gametophyte is haploid and the sporophyte diploid.
The two phases may be isomorphic (similar) or heteromorphic (different body plan).
Sporophytes produce spores in sporangia (sing. sporangium).
The sporophyte usually produces spores by meiosis, but some by mitosis – these spores are diploid and produce a new sporophyte in a form of asexual reproduction.
Some gametophytes produce spores by mitosis, which develop into new gametophytes – asexual reproduction.
Gametes are produced in gametangia.
Gametes may be isogamous, anisogamous or oogamous.
Cytokinesis in the Chlorophyta
The following notes are based on Raven et al.
The classes Chlorophyceae and Ulvophyceae form a phycoplast during cell division, which is system of microtubules parallel to the plane of cell division.
Nuclear envelope persists during mitosis.
Mitotic spindle forms and then disappears at telophase.
Daughter nuclei are separated by the phycoplast in which the microtubules lie perpendicular to the axis of division.
The role of the phycoplast is presumed to ensure that the cleavage furrow will pass between the two daughter nuclei.
Cytokinesis is by cell plate formation or development of a furrow.
The Chlorophyceae form four narrow bands of microtubules known as flagellar roots, which are associated with the flagellar basal bodies (centrioles) of the flagella.
The Ulvophyceae have a persistent spindle but do not develop a phragmoplast or cell plate.
The class Charophyceae does not form a phycoplast but develop a phragmoplast like land plants.
Formation of a phragmoplast, which is parallel-aligned microtubules and microfilaments at right angles to the forming cell plate, is to generate a guiding and supporting matrix for the deposition of new cell plate.
The phragmoplast is a system of microtubules, microfilaments and ER vesicles that is oriented perpendicular to the plane of division.
It serves in the assembling of the cell plate and the cell wall.
As the cell plate matures in the center of the phragmoplast, the phragmoplast and developing cell plate grow outward until they reach the of the dividing cell. See pages 64-67in Raven et al.
Spindle is persistent through mitosis.
Cytokinesis is by cell plate formation or furrowing, just like bryophytes and vascular plants.
The flagellar root system of microtubules provides anchorage to the flagellum.
The multilayered structure is often associated with one of the flagellar roots.
The type of multilayered structure is often an important taxonomic character.
The flagellar root had multilayered structure of the Charophyceae is very similar to that found in the sperm of bryophytes and some vascular plants.
Class Chlorophyceae
There are approximately 350 genera and 2650 living species of chlorophyceans.
Mostly freshwater species.
They come in a wide variety of shapes and forms, including free-swimming unicellular species, colonies, non-flagellate unicells, filaments, and more.
Cytokinesis may be by furrowing or by cell plate formation.
When flagellate, the flagella are apical and equal in length, and directed forward.
They also reproduce in a variety of ways, though all have a haploid life cycle, in which only the zygote cell is diploid.
The zygote will often serve as a resting spore, able to lie dormant though potentially damaging environmental changes such as desiccation.
Chlamydomonas is motile unicellular chlorophyte.
Two equal flagella.
One chloroplast with a red photosensitive eyespot, or stigma, aids in the detection of light.
Chloroplast has a pyrenoid, which is typically surrounded by a shell of starch.
The cell wall is made of a carbohydrate and protein complex inside which is the plasma membrane; there is no cellulose in the cell wall.
Reproduction is both sexually and asexually.
See the Life Cycle diagram on page 331 in Ravel et al.
Volvox is a motile colony.
The colony consists of a hollow sphere called the spheroid, made up of a single layer of 500 to 60,000 vegetative, biflagellated cells that serve primarily in photosynthesis.
Specialized reproductive cells undergo repeated mitoses to form many-celled spheroids, which are released after producing an enzyme that dissolves the parental matrix.
Sexual reproduction is oogamous.
Chlorococcum is a unicellular, non-motile chlorophyte.
Found in the soil.
Reproduces by forming biflagellated zoospores.
Sexual reproduction happens by the fusion of biflagellated gametes, which fuse in pairs to form zygotes.
Meiosis is zygotic.
Hydrodictyon is a non-motile colony.
The individual cells are cylindrical and initially uninucleated and eventually becoming multinucleated.
The cells form a hollow cylinder.
At maturity, the cells contain a large, central vacuole surrounded by the cytoplasm containing the nuclei and a large reticulate chloroplast with numerous pyrenoids.
It reproduces asexually through the formation of many uninucleated, biflagellated zoospores.
The zoospores are not released but form an arrangement within the parent cell, then lose their flagella and form the components of a mini-net.
Sexual reproduction is isogamous and meiosis is zygotic.
There are also filamentous and parenchymatous Chlorophyceae, e.g. Oedogonium, Stigeoclonium, and Fritschiella.
Class Ulvophyceae
Mostly marine algae with a few representatives in fresh water.
Filamentous septate, filamentous coenocytic (siphonous) or thalloid
Filamentous species have large multinucleate cells separated by septa; some may be netlike others straight chains. They have a netlike chloroplast.
Siphonous algae are characterized by very large, branched, coenocytic cells
Thalloid species have a single nucleus and chloroplast.
Majority has one plane of division, unlike the Ulva with three planes
Spindle and nuclear envelope persist through mitosis.
Flagellated cells may have two, four or many flagella directed forward
Alternation of generations with a haploid gametophyte and diploid sporophyte.
They have sporic meiosis or a diploid, dominant life history involving gametic meiosis.
Cladophora is a filamentous septate ulvophyte.
It forms large blooms in fresh water.
There are both marine and fresh water species of Cladophora.
Each cell is multinucleated and has one single, peripheral, net-like chloroplast with many pyrenoids. Marine species have an alternation of isomorphic generations.
Most of the fresh water species do not have an alternation of generations.
Ulva consists of a two-cell thick flat thallus that may grow up to a meter in length.
It is known as sea lettuce.
Ulva is anchored to the substrate by a holdfast produced by extensions of the cells at its base.
The cells of the thallus are uninucleate and have one chloroplast.
Ulva is anisogamous and has an alternation of isomorphic generations.
Codium and Halimeda are examples of siphonous marine algae.
Very large, coenocytic cells that are rarely septate characterize siphonous algae.
Cell walls are only produced during reproduction.
Siphonous green algae are diploid, with gametes being the only haploid stage.
Halimeda has calcified cell walls.
Examples to study:
Thalloid: Ulva.
Siphonous: Acetabularia, Codium, Ventricaria, Halimeda.
Filamentous septate: Cladophora.
Class Charophyceae
Growth habit may be unicellular, filamentous, colonial or thalloid (parenchymatous).
Considered closely related to plants due to structural, biochemical and genetic similarities.
The orders Coleochaetales and Charales have plant-like characteristics. These include:
Asymmetrical flagellated cells always have two flagella.
Breakdown of the nuclear envelope at mitosis
Persistent spindles or phragmoplast at cytokinesis.
Presence of phytochrome, flavonoids and chemical precursors of the cuticle.
Other molecular features.
Spirogyra is an unbranched, filamentous charophyte.
Found in fresh water, often forming blooms.
Cells uninucleate.
Filaments are surround by a watery sheath.
Chloroplasts one or more, flat ribbon-like with numerous pyrenoids.
Asexual reproduction occurs by fragmentation.
There are no flagellated cells at any stage of its life cycle.
Sexual reproduction takes place through the formation of a conjugation tube.
The cytoplasm of one cells migrates to the other cell and function as isogametes.
A thick wall of sporopollenin surrounds the zygote.
Meiosis is zygotic.
Desmids are a large group of fresh water charophytes.
Lack flagellated cells.
Desmid cells consist of two sections of semi-cells joined by a narrow constriction.
Sexual reproduction is similar to Spirogyra.
Two orders of Charophyceae, the Coleochaetales and the Charales, resemble bryophytes and vascular plants.
They have plant-like microtubular phragmoplast operating during cytokinesis.
They are oogamous and their sperm are ultrastructurally similar to those of bryophytes.
Morphological and molecular studies indicate that an early basal split in the green algae gave rise to a chlorophyte clade containing most of the green algae, and a streptophyte clade that includes the Coleochaetales and Charales, zygnematalean green algae, and land plants (bryophytes and vascular plants).
Coleochaetales
Include branched filamentous and discoid genera.
Growth occurs at the apex or peripheral cells, and the plant is anchored in mud or silt by translucent rhizoids.
Coleochaete has uninucleate vegetative cells that each contains one large chloroplast with an embedded pyrenoid.
It reproduces asexually by zoospores that are formed singly within cells.
Sexual reproduction is oogamous.
The zygotes remain attached to the parental thallus, which stimulate the growth of a layer of cells that covers the zygotes.
These parental cells have wall ingrowths are believed to function in nutrient transport between gametophyte and sporophyte.
Charales
The thallus in some stoneworts is encrusted with white lime, giving a crusty texture (hence the name brittlewort).
The Charales exhibit apical growth.
The thallus is differentiated into nodal and internodal regions.
The nodal regions have plasmodesmata.
Sperms are produced in multicellular antheridia.
Eggs are produced in oogonia enclosed by several long, tubular, twisted dells.
Sperms are the only flagellated cells in their life cycles.
Zygotes are surround by sporopollenin.
Examples to study:
Filamentous: Spirogyra, desmids.
Thalloid: Coleochaete.
Branched filamentous: Chara
Division Rhodophyta
Red algae are mostly marine organisms found in tropical and warm waters. Fewer than 100 species occur in fresh water. Some occur in cooler regions of the world.
Many species are found in very deep water.
There are 4100 to 6000 known species.
Red algae are mostly structurally complex multicellular organisms with very few species unicellular or microscopic filaments.
They may grow attached to the substrate, submerged vegetation and a few are free floating.
Unique Features Of Cells
Their cell wall lack plasmodesmata but they have pit connections. It is not known if these pits are used for intercellular transport.
Red algae do not produce flagellated cells, and lack centrioles.
Most red algae cell walls are made of cellulose microfibrils that are densely interwoven and are held together by mucilage.
The mucilage is a sulfonated polymer of galactose such as agar and carageenan.
Some species called coralline algae, deposit CaCO3 in their walls.
Coralline algae play an important role in coral reef building.
Many produce toxic terpenoids that deter herbivores.
Food reserves are stored as floridean starch in granules.
Floridean starch resembles glycogen.
Chloroplasts are reddish (rhodoplasts) and contain chlorophyll a, α and β-carotene, accessory water-soluble pigments called phycobilins (phycocyanin, phycoerythrin, allophycocyanin).
These pigments absorb well green and blue-green wavelengths that penetrate deep into the water.
Chloroplast chemicals resemble those found in cyanobacteria and may have originated from this group by endosymbiosis.
Complicated Life Histories
Many reproduce asexually by discharging spores, called monospores, into the water.
All red algae have complex life cycles, reproduce sexually and have no flagellated stages.
Gametophyte, carposporophyte, tetrasporophyte.
The simplest form of sexual reproduction involves the alternation of a haploid gametophyte and a diploid sporophyte.
The gametophyte produces spermatangia (sing. spermatangium) that release nonmotile
The female gamete or egg is produced in the carpogonium, on a same gametophyte.
The carpogonium develops a protuberance called the trichogyne for the reception of the spermatia.
The spermatium fuses with the trichogyne and the nucleus travels to the female nucleus and fuses with it.
The resultant diploid zygote then produces a few diploid carpospores, which are release into the water.
Carpospores produce sporophytes that form haploid spores, which in turn produce new gametophytes.
In some red algae, the zygote produces a carposporophyte generation, which remains attached to the parent gametophyte.
The carposporophyte divides mitotically and eventually produces carpospores.
The carpospores are released and settle onto a substrate, and grow into separate diploid sporophytes.
In many red algae, the diploid zygote is transferred to another cell of the gametophyte called the auxiliary cell where it proliferates into many carpospores.
The carpospores produce a new generation called the tetrasporophyte.
Meiosis occurs I in specialized cells of the tetrasporophyte, called the tetrasporangia.
Each tetraspore germinates into a gametophyte.
Division Phaeophyta
Phaeophytes are also known as brown algae
It is an entirely marine group especially abundant in temperate and cold waters.
Common in the intertidal and subtidal zones; dominant alga of rocky shores.
About 1,500 species.
The Thallus
Size - few are microscopic, most much larger - up to 60 m. Larger forms with complex structure.
There are no known unicellular or colonial representatives of this group.
The simplest form of plant is a branched, filamentous thallus (pl. thalli): a relatively undifferentiated vegetative body.
The thalli range in complexity from simple branched filaments to aggregation of branched filaments called pseudoparenchyma.
Adjacent cells are connected by plasmodesmata without desmotubules connecting the ER.
Pigments
Cells contain numerous disk-shaped, golden-brown plastids that are similar both biochemically and structurally to those of chrysophytes and diatoms.
Chlorophyll a and c (no Chlorophyll b), ß-carotene, fucoxanthin and other xanthophylls.
Food reserves are typically complex polysaccharides, sugars and higher alcohols and sometimes fats.
Glucose and mannitol are polymerized together as laminarin.
Mannitol is a six-carbon sugar-alcohol; it is linked together with glucose in a beta-1,3 linkage.
The principal carbohydrate reserve is laminarin and true starch is absent.
There are two groups based on the presence or absence of pyrenoids.
Kelps
Kelps (Macrocystis and Nereocystis) and rockweeds have a highly differentiated bodies
The walls are made of cellulose and algin, an alginic acid, a long-chained heteropolysaccharide.
Some have stem-like, root-like, leaf-like organs.
Since they do not have vascular systems, these structures are not true stems, roots, or leaves. Termed rhizoid, holdfast, stalk or stipe, and blade.
Kelps have a meristematic region between the stipe and the blade.
Sargassum and Fucus grow from repeated divisions from a single apical cell.
Some species have floatation bladders.
Some free-floating species have lost the holdfast.
Some of the kelps have modified elongated cells in the center of the stipe that are capable of conducting carbohydrates from the blades near the water surface to the lower parts of the alga.
Some brown algae have evolved sieve tubes comparable to those found in food-conducting tissue of vascular plants. These are called trumpet cells.
Sieve tube elements are joined end-on-end by the sieve plates.
Of great economic importance: fertilizer, food especially in Japan, source of algin - stabilizer & moisture retainer in many products such as ice cream, cake frosting, paint, pharmaceuticals, processing of natural and synthetic rubber.
Life Cycle
Their life cycle involves an alternation of generation, and meiosis occurs during spore formation (sporic meiosis).
The ends of the branches are called receptacles and are swollen with large deposits of hydrophilic compounds. Scattered over the surface of the receptacles are small openings that lead to cavities called conceptacles. Gametangia develop in the conceptacles.
The gametophytes of the primitive brown algae produce reproductive structures called plurilocular gametangia. They may function as male or female gametangia or produce flagellated haploid spores that give rise to new gametophytes.
The diploid sporophyte produces both plurilocular and unilocular sporangia.
The plurilocular sporangia produce diploid zoospores that produce diploid sporophytes.
Meiosis takes place in the unilocular sporangia producing haploid zoospores that germinate to produce haploid gametophytes.
Zoospores have tinsel and whip flagella.
Some groups (e.g. Fucus) do not form spores and have a gametic life cycle without alternation of generations.
Phylum Bacillariophyta
An ancient group that appeared in the fossil record about 250 million years ago, and became abundant in the fossil record about 100 million years ago during the Cretaceous.
Diatoms are unicellular or colonial organisms that form an important component of the phytoplankton.
They may count for as much as 25% of the primary production of the earth.
There may be as many as 100,000 species, some of the most diverse and abundant algae on earth.
Diatoms are the primary source of food for many marine animals; they provide essential carbohydrates, fatty acids, sterols, and vitamins to the consumers.
Diatoms live in both freshwater and marine habitats, but are especially abundant in cold marine waters.
Diatoms can also inhabit terrestrial habitats such as damp cliff faces, moist tree trunks and on the surfaces of buildings.
The Walls Of Diatoms Consist Of Two Halves
Cell wall in two parts known as frustules, are made of polymerized silica (SiO2 H2O, 95%) and carbohydrates especially pectin (5%).
The shell is composed of an upper and lower half, with the lower half fitting neatly within the upper, like a Petri dish.
The shell is highly ornamented and perforated with microscopic holes so precisely spaced that they are used commercially to test the resolution of expensive microscope lenses.
These holes connect the living protoplast with the external environment.
Freshwater forms are usually cylindrical in shape: pennate.
Marine species are usually spherical or circular: centric.
Chrysophytes form sometimes “brown blooms” in fresh and salt water.
Diatoms have chlorophyll a and c, and the golden-brown carotenoid fucoxanthin.
Two large chloroplasts are present in pennate diatoms, and many discoid chloroplasts in centric species.
Food is stored in the form of oils and chrysolaminarin, a soluble polysaccharide stored in vacuoles.
Some species are heterotrophic absorbing organic molecules from the environment. Other heterotrophs live symbiotically in foraminiferans.
Fossil frustules make the diatomaceous earths mined for use as filters, insulating material and abrasive polish.
Reproduction In Diatoms Is Mainly Asexual
Reproduction is usually asexual. Changes in the environment or critical small size triggers sexual reproduction.
Yellow-green algae
Some phycologists as a division or class consider the yellow-green algae different from the chrysophytes. Others include them in the chrysophytes.
They have a variety of body shapes: unicellular, filamentous, siphonous or large multicellular body form.
They have chlorophyll c.
Asexual reproduction occurs by isogamy in Vaucheria.
Sexual reproduction consists of biflagellated sperms and a multinucleated egg.
The zygote breaks off and after a period of dormancy germinates forming a new “tube” filled with haploid nuclei.
Division Chrysophyta
Also know as the golden-brown algae.
Chrysophytes are photosynthetic, unicellular colonial organisms; some plasmodia, filamentous and tissue-like forms. About 1000 known species.
Abundant in freshwater and marine environments worldwide.
Chrysophytes contain chlorophylls a and c, and accessory pigment fucoxanthin, a carotenoid.
Cells usually have one or two chloroplasts.
They store food in a vacuole in the form of polysaccharide chrysolaminarin, which is stored in a vacuole usually found in the posterior of the cell.
Some species are heterotrophic ingesting bacteria, algal cells and organic particles.
Some species have cell wall containing cellulose and impregnated with minerals. Others are without walls. One group has silica plates on the cell surface.
Reproduction is mostly asexual by means of zoospores with unequal flagella of similar structure.
Some species can reproduce sexually.
Resting cysts are formed as a result of sexual reproduction at the end of the growing season.
In many ways, golden algae are biochemically and structurally similar to brown algae.
Division Dinophyta
The dinophyta are also known as dinoflagellates.
Molecular evidence indicates that the dinoflagellates are closely related to ciliate protozoa such as Paramecium and Vorticella, and to apicomplexans, a group of parasitic flagellates whose cells contain a non-pigmented plastid, e.g. Plasmodium that causes malaria.
Apicomplexans, dinoflagellates and others form a group called alveolates.
Most are unicellular biflagellates.
About 4000 known species, most of which are members of the marine phytoplankton.
Their flagella beat in two grooves, one encircles the cell and the other extends lengthwise.
The nonmotile dinoflagellates produce flagellated cells that beat in grooves.
Their chromatin is always condensed into chromosomes.
Many are covered with cellulose plates forming a theca.
About half of the dinoflagellates lack photosynthetic apparatus and feed by ingesting food particles or absorbing dissolved organic compounds.
They have chlorophyll a and c, β- and γ-carotenes, a carotenoid called peridinin, fucoxanthin, a yellow-brown carotenoid, and other xanthins..
Some pigmented flagellates carry out photosynthesis and also feed by absorbing carbon compound through a protruded peduncle; this is called myxotrophy.
When dinoflagellates are symbionts, they lack theca, e.g. zooxanthellae of giant clams, corals, worms, etc.
Dinoflagellates store their food as oils and starch.
Under adverse periods of low nutrient levels, dinoflagellates form resting cysts that are carried by currents.
Reproduction is mostly asexual but sexual reproduction has been observed in some species.
Some species produce bioluminescence and powerful neurotoxins that are accumulated by fish and mollusks.
They have a characteristic type of nuclear and cell division.
http://www.ucmp.berkeley.edu/protista/dinoflagellata.html
http://www.ucl.ac.uk/GeolSci/micropal/dinoflagellate.html
http://www.ucmp.berkeley.edu/protista/alveolates.html
http://www.ucmp.berkeley.edu/protista/apicomplexa.html
http://www.nmnh.si.edu/botany/projects/dinoflag/
Phylum Oomycota
Oomycetes is a distinct heterotrophic group of about 700 species.
Unicellular to highly branched, coenocytic and filamentous forms.
Oomycetes are either saprobes or symbionts.
They inhabit aquatic environments: marine, freshwater or moist terrestrial habitats.
Their cell wall is made of cellulose.
Their food reserve is in the form of glycogen.
Asexual reproduction is by means of motile zoospores, which have the characteristic two flagella of heterokonts.
Sexual reproduction is oogamous: one gamete large and nonmotile, the other small and motile.
Eggs are produced in the oogonia.
The antheridium contains many male nuclei.
The fertilized egg forms a thick-walled zygote called the oospore.
The oospore serves as a resting stage during stressful conditions.
Oomycetes are also called water molds, white rusts and downy mildew.
Water Molds Are Aquatic Oomycetes.
Abundant in fresh water.
Mostly saprophytic and a few parasitic including species that cause diseases to fish and fish eggs.
Species may be homothallic or heterothallic.
Saprolegnia and Achlya are common water molds that reproduce sexually and asexually.
Some Terrestrial Oomycetes Are Important Plant Pathogens
Terrestrial oomycetes produce motile zoospores when water is available.
Terrestrial oomycetes are important plant pathogens; the genus Phytophthora is particularly destructive to plants.
They attack important crops like grapes, pineapples, onions, strawberries, apples, citrus fruits, cacao, etc.
Phytophthora cinnamomi killed millions of avocado trees in southern California, and destroyed thousands of hectares of Eucalyptus timberland in Australia.
Phytophthora ramorum was the cause of the disease called “the sudden oak death.” It attacks many species of oaks and also 26 other species of plants including firs and coastal redwoods.
The great potato famine in Ireland (1846) was caused by the oomycete Phytophthora infestans.
A gene has been found in a species of wild potato, Solanum ulbocastanum, from Mexico, that is resistant to potato blight. The resistant gene has now been inserted in the commercial potatoes, Solanum tuberosum.
The genus Pythium attacks and rot seeds in the wild (preemergence damping-off) and seedling (postemergence damping-off)
Before a diatom can undergo mitosis, it must be living in an environment with sufficient silicon to allow it to construct a new shell.
The diploid protoplast undergoes typical mitosis within the shell, and then the two-shell halves separate.
One protoplast gets the top half, and the other gets the bottom half.
In either case, the protoplast then secretes a new "bottom" to the "Petri dish"(i.e., a new half fitting inside the old half).
This means that after every mitotic division, one of the resulting diatoms is smaller than the original. This can go on for several generations.
Eventually, the protoplast inside the tiny shell undergoes meiosis rather than mitosis. Four haploid gametes are released from the shell, which is discarded.
When two gametes meet and fuse, the resulting diploid cell is called an auxospore (zygote).
The auxospore grows into a normal size of the species.
It then secretes a silica case of the original size...and the cycle begins anew.
Sexual reproduction in centric diatoms is usually oogamous, and in pennate diatoms non-motile isogamous.
Division Euglenophyta.
Mostly unicellular fresh water organisms; one colonial genus.
Molecular evidence indicates that earlier euglenoids were phagocytic.
About one third of euglenoids contain chloroplasts; their chloroplasts resemble those of the green algae and suggest that they were formed from endosymbiotic green algae.
About two thirds of the genera are colorless heterotrophs that depend on particle feeding and absorption of dissolved organic compounds.
They are mostly freshwater organisms living in waters rich in organic compounds and particles.
Cell structure:
Cell membrane, with pellicle immediately beneath the membrane.
Lack cell wall; one genus has a wall-like covering made of manganese and iron minerals.
The pellicle is made of protein strips arranged in the form of a helix; it may be rigid or flexible.
Single flagellum for movement coming from the reservoir, and a second non-emergent flagellum.
Flagellar swelling and the stigma or eyespot makes the light-sensing system.
Contractile vacuole used in maintaining water balance.
Pyrenoids are found in chloroplasts. It is a region where rubisco is found and paramylon, a polysaccharide is stored.
Pigments present: chlorophylls a and b, carotenoids and several xanthophylls.
Euglenoids grown in absence of light have been known to lose their chloroplasts and become heterotrophic.
Reproduction in euglenoids is asexual, by mitotic cell division. Sexual reproduction is unknown.
The nuclear membrane remains intact during mitosis in a way similar to the fungi.
About 900 species are known.
An intact mitotic nuclear envelope is probably a primitive condition. The break down of the nuclear membrane is probably a derived condition that appeared after euglenoids separated from the main stack of protists.
http://botit.botany.wisc.edu/courses/botany_130/Diversity/Euglena/Euglena.html
http://www.life.umd.edu/labs/delwiche/PSlife/lectures/Euglenophyta.html
http://www.csupomona.edu/~jcclark/classes/bot125/resource/survey/euglenophyta.html
ECOLOGY OF THE ALGAE
The Ecology of the algae is not found in your textbook.
Algae are dominant in salt and fresh water habitat.
Everywhere they grow, they play a role similar to that of plants in terrestrial habitats.
Along rocky shores, the large and more complex members of the brown, red and green algae grow forming bands that reflect the ability of the seaweeds to withstand exposure.
Seaweeds in this intertidal zone are exposed twice a day to large fluctuations of humidity, salinity and light, in addition to pounding action of the surf and forceful, abrasive water motions.
Polar seaweeds endure months of darkness under the sea ice.
Seaweeds are the food source to a host of herbivores and parasites.
Large beds of seaweeds provide a safe habitat for many aquatic organisms, e.g. kelp beds off the coast of California.
Plankton refers to all suspended drifting organisms found in all bodies of water.
Planktonic algae and cyanobacteria constitute the phytoplankton found in oceans and fresh water.
Heterotrophic plankton and usually swimming microorganisms are called zooplankton.
Bacteria and some heterotrophic protists form the bacterioplankton.
Phytoplankton is found at the base of the food chain.
Colonial and single-celled chrysophytes, dinoflagellates, diatoms and green algae are the most important organisms at the base of the food chain in freshwater habitats.
Unicellular and colonial haptophytes, dinoflagellates and diatoms are the primary producers of the ocean.
In both marine and freshwater habitats, phytoplankton populations are kept in check by seasonal climatic changes, nutrient limitation and predation.
Phytoplankton is the major producers of oxygen in the atmosphere.
Phytoplankton reduces the amount of CO2 in the atmosphere by fixing it during photosynthesis.
Phytoplankton is important in the deposition of CaCO3 deposits on the ocean floor.
The CO2 fixed by photosynthesis and the calcification process is replaced by atmospheric CO2
Several types of multicellular algae are important members of coral reefs and deposit a substantial amount of calcium compound important in coral building.
Some haptophyte protists produce substantial amounts of sulfur oxides that are added to the atmosphere and reflect sunlight helping to maintain a cooler temperature.
CCRES ALGAE TEAM
part of
Croatian Center of Renewable Energy Sources
Friday, March 20, 2015
CCRES FUCUS
Fucus vesiculosus, may be an effective alternative treatment for hypothyroidism for some people as it contains iodine found naturally in the sea. Hypothyroidism, also called underactive thyroid, is a condition where the thyroid gland fails to produce enough thyroid hormone. This results in one’s metabolism falling outside of the desired range. There are a wide range of thyroid medications available, both natural and pharmaceutical. As with all medicines, Fucus can occasionally cause side effects, so always consult your healthcare practitioner before starting treatment.
#Hypothyroidism
Hashimoto’s thyroiditis is the most common form of hypothyroidism. It is considered to be an autoimmune disease as the body mistakes the thyroid gland for a foreign body and sends antibodies to attack it which eventually destroy it over time. This leaves the body without essential thyroid hormones that are required for controlling body temperature, appetite and rate of metabolism. If left untreated, hypothyroidism can lead to serious health disorders that could prove fatal.
Symptoms
Symptoms of an underactive thyroid include tiredness, reduced heart rate and pulse, weight gain, dry skin and hair, hair loss, sensitivity to cold, confusion, anxiety, depression, joint pain, headaches, numbness in the extremities and menstrual problems. However, as these symptoms can be attributed to any number of health problems they are often overlooked. If you are experiencing a combination of the aforementioned symptoms without any obvious cause, contact your doctor immediately for a check-up.
#Iodine
According to the University of Maryland Medical Center, those who experience hypothyroidism due to a iodine deficiency may be able to treat their condition with kelp. Iodine, found naturally in kelp, is required to enable the thyroid gland to function correctly. The majority of people in the western world use iodized salt and therefore do not need to supplement with iodine unless they suffer from hypothyroidism.
#Fucus
Fucus is rich in iodine and is available in many different forms including tinctures and standardized extracts. According to the NYU Langone Medical Center, fucus is often referred to as kelp as it is present in a large number of kelp tablets. However, kelp is not considered to be the same as fucus as it is actually a different form of seaweed. The University of Maryland Medical Center recommends a dose of 600mg fucus one to three times per day to stimulate thyroid activity. It is not recommended to self-treat hypothyroidism with fucus.
#CCRES #ALGAE TEAM
Sunday, May 4, 2014
The Effects of Astaxanthin - Weight Control
Physical Endurance and Muscle Recovery
Work, Sport, Leisure – in fact all physical activity will generate reactive oxygen species (ROS); the more intense the activity the greater number of free radicals. ROS are shown to have damaging effects on muscle performance and recovery. Published and on-going research, focused on improving endurance and reducing recovery time, are showing dramatic benefits linked to the potent carotenoid - astaxanthin. These findings are bringing astaxanthin to the forefront as a dietary supplement for professional athletes and physically active people.
Important to physical activity are our mitochondrial
cells, often referred to as the “power stations of the cell” , which
provide as much as 95% of our body’s pure energy (primarily by the
burning of muscle glycogen and fatty acids). Unfortunately, a portion of
this energy produces highly reactive and damaging ROS. ROS damage cells
by triggering peroxidation of the cell membrane components, and
oxidation of DNA and proteins. Furthermore, ROS continue to affect
muscles even after the strenuous exercise has ceased. ROS activate the
inflammation response whereby monocytes migrate into the muscle tissue
causing additional cell damage. Often we will notice the onset of muscle
damage during recovery in the form of tiredness and soreness. In
addition to improving muscle performance through devised exercise
regime, the sports research community is looking at other methods, such
as nutrition to fuel and protect the body under extreme physical
conditions. In the past, Vitamins E and C helped make the use of
antioxidants a popular tool against oxidative damage during intense
physical activity. Today, informed by current research we can point to
astaxanthin as the antioxidant of choice for sports performance.
Astaxanthin demonstrated 3 important physical benefits in clinical
trials and supporting studies. Astaxanthin increased endurance, reduced
muscle damage and improved lipid metabolism.
Astaxanthin Boosts Endurance
In a randomized, double-blind, placebo controlled study on healthy men supplemented with 4 mg astaxanthin per day for up to 6 months at Karolinska Institute, Sweden, standardized exercise tests demonstrated that the average number of knee bends performed increased only in the astaxanthin treated group at 3 months, and by the 6 month significant improvements were observed (Figure 1) (Malmsten & Lignell, 2008).
Figure 1. Increase in strength/endurance (Malmsten & Lignell, 2008)
Astaxanthin improved strength/endurance at 3 and 6 months determined by the average number of knee bends per person.
Figure 2. Effect of astaxanthin on swimming time (Ikeuchi et al., 2006)
Astaxanthin improves endurance in a dose-dependant manner.
Figure 3. Reduction of lactic acid build-up after astaxanthin supplementation in track subjects (Sawaki et al., 2002)
Figure 4. Effect of astaxanthin on blood lactate during swimming for 15 minutes (Ikeuchi et al., 2006)
Astaxanthin reduced build-up of lactic acid in a dose-dependant manner.
In a double blind controlled placebo study, healthy women (n= 32;
age-23-60) who ingested 12 mg of astaxanthin for 6 weeks significantly
reduced their body fat (4%) when conducting routine walking exercise,
compared to a placebo group. In addition, while control group increased
their lactic acid by 31% compared to the astaxanthin group - only 13%The Mechanism
The mechanism behind muscle endurance is based on several findings. Generally, astaxanthin protected the skeletal muscle from the increased damage of oxidative stress generated by physical activity. Furthermore, astaxanthin increased the metabolism of lipids as the main source of energy production by protecting the carnitine palmitoyltransferase I (CPT I) involved in fatty acid transport into mitochondria. Aoi et al., (2003) of Kyoto Prefecture University used mice models that may partially explain the efficacy of astaxanthin; they compared control, exercise placebo, and astaxanthin treated exercise groups after intense physical activity. 4-hydroxy-2-nonenal-modified-protein (4-HNE) stain analyses of the calf (gastrocnemius) muscles revealed significantly lower peroxidation damage (Figure 5).
Figure 5. Effect of astaxanthin on 4-HNE-modifed proteins in leg muscle before and after exercise (Aoi et al., 2003) 
Other biochemical markers for oxidative damage and inflammation such
as DNA, (2003) also explained that
astaxanthin directly modulates inflammation caused by the release of the
pro-inflammatory cytokines and mediators. In vivo and in vitro tests
demonstrate that astaxanthin inhibits the IκB Kinase (IKK) dependant
activation of the Nuclear Factor-kB (NF-κB) pathway, a key step in the
production of pro-inflammatory cytokines and mediators.
Aoi et al., 2008 also demonstrated increased lipid
metabolism compared to carbohydrate as the main source of energy during
strenuous activity (Figure 6). Furthermore, analysis of the
mitochondrial lipid transport enzyme known as carnitine
palmitoyltransferase I (CPT I) revealed increased fat localization
(Figure 7) and reduction of oxidative damage in the presence of
astaxanthin (Figure 8). CPT I is important because it regulates fatty
acyl-CoA entry into the mitochondria in the oxidation of fatty acids in muscle. Exercise-induced ROS may partly limit utilization of fatty acid
via diminishing CPT I activity.
Figure 6. Fat substrate utilization increased with astaxanthin (Aoi et al., 2008)
Figure 7. Increased amount
of FAT/CD36 that coimmunoprecipitated with CPT I skeletal muscle after a
single session of exercise at 30 m/min for 30 min (Aoi et al., 2008)
Values are means ± SE obtained from 6 mice.
Figure 8. Astaxanthin
reduced the amount of HEL-modified CPT1 in skeletal muscle after a
single session of exercise at 30m/min for 30min (Aoi et al., 2008)
Values are means ± SE obtained from 6 mice.
Outlook
Strenuous physical activity generates high levels of ROS which affect muscle performance and metabolism of lipids. New research shows that astaxanthin can modify muscle metabolism via its antioxidant effect, resulting in the improvement of muscle function during exercise. Therefore, astaxanthin is expected to be useful for physically active people as well as athletes.
References
- Aoi W, Naito Y, Sakuma K, Kuchide M, Tokuda H, Maoka T, Toyokuni S, Oka S, Yasuhara M, Yoshikawa T. (2003). Astaxanthin limits exercise-induced skeletal and cardiac muscle damage in mice. Antioxid Redox Signal, 5(1):139-144.
- Aoi W, Naito Y, Takanami Y, Ishii T, Kawai Y, Akagiri S, Kato Y, Osawa T, Yoshikawa T. (2008). Astaxanthin improves muscle lipid metabolism in exercise via inhibitory effect of oxidative CPT I modification. Biochem. Biophys. Res. Com., 366:892–897.
- Fukamauchi, M. (2007). Food Functionality of astaxanthin-10: Synergistic effects of astaxanthin-10 intake and aerobic exercise. Food Style 21, 11(10). [In Japanese]
- Ikeuchi M, Koyama T, Takahashi J, Yazawa K. (2006). Effects of astaxanthin supplementation on exercise-induced fatigue in mice. Bio. Pharm. Bull., 29(10):2106-2110.
- Lee SJ, Bai SK, Lee KS, Namkoong S, Na HJ, Ha KS, Han JA, Yim SV, Chang K, Kwon YG, Lee SK, Kim YM. (2003). Astaxanthin Inhibits Nitric Oxide Production and Inflammatory Gene Expression by Suppressing IκB Kinase-dependent NF-κB Activation. Mol. Cells, 16(1):97-105.
- Malmsten C, Lignell A. (2008). Dietary supplementation with astaxanthin rich algal meal improves muscle endurance – a double blind study on male students. Carotenoid Science 13:20-22.
- Sawaki K, Yoshigi H, Aoki K, Koikawa N, Azumane A, Kaneko K, Yamaguchi M. (2002). Sports performance benefits from taking natural astaxanthin characterized by visual activity and muscle fatigue improvements in humans. J Clin.Therap. Med., 18(9):73- 88.
CCRES special thanks to
Mr. Mitsunori Nishida,
President of Corporate Fuji Chemical Industry Co., Ltd.
Croatian Center of Renewable Energy Sources (CCRES)
Friday, May 2, 2014
The Effects of Astaxanthin - Gastric Health
Astaxanthin for Dyspepsia and Helicobacter pylori
Dyspepsia is the general term given to a variety of digestive problems localized in the upper abdominal region. Typical symptoms for example include stomach pain, gas, acid-reflux or bloating. Dyspepsia is like the stomach version of the irritable bowel syndrome and its symptoms may appear at any age or to any gender. The medical approach to dyspepsia involves looking for treatable causes and addressing them if identified. Failing that, doctors suggest treatments by trial-and-error. The problem associated with this non-standardized approach involves drugs that may not work, may cause side effects and exacerbate the patient’s condition brought on by stressful attempts to cure symptoms.
To understand the benefits of astaxanthin in dyspepsia, it is necessary to categorize specific types; most common forms are either non-ulcer dyspepsia or gastric dyspepsia. Non-ulcer dyspepsia problems usually do not have an identifiable cause, but fortunately, for most cases it is non-disease related and therefore temporary. On the other hand, gastric type dyspepsia is more severe and linked to identifiable causes. For example, the bacterial infection of Helicobacter pylori is a commonly known cause. Pathological symptoms of H. pylori infection include high levels of oxidative stress and inflammation in the stomach lining and symptoms like gastric pain and acid reflux., H. pylori can contribute to mild and severe kinds of symptoms, but on the other hand, people who are H. pylori positive can remain asymptomatic whereas others may develop into clinical problems. It is still unclear what triggers the severe form of infection and how the bacteria is passed on, but scientists suggested using strong antioxidants like astaxanthin for therapy and better long term protection.
Helicobacter pylori in Gastric Dyspepsia
This Gram-negative bacterium is present in approximately half of the world population, and typically resides in the human gastric epithelium (stomach lining). H. pylori infection is generally acknowledged as the main cause for type B gastritis, peptic ulcer disease and gastric cancer. The pathogenesis of this infection is partly due to the immunological response as shown by Bennedsen et al., (1999). Astaxanthin (200 mg/kg body weight) fed to H. pylori infected mice for 10 days exhibited signs of improved immune system. Normally, the T-helper1 (Th1) response exacerbates inflammation and epithelial cell damage due to infection, but the astaxanthin treated mice responded with a mixed Th1/Th2-response (Figure 1), which lowered gastric inflammation (Figure 2) and bacterial loads (Figure 3). Furthermore, the findings by Wang et al., (2000) also supported the idea that a diet supplemented with astaxanthin or vitamin C in mice lowered inflammation after 10-days of treatment (in vivo), and also inhibit H. pylori growth (in vitro). The mice treated with astaxanthin (10 mg/kg body weight) had the same effect as vitamin C (400 mg/Kg) which significantly lowered gastric inflammation and lipid peroxidation (Figure 4) compared to infected control mice; which continued to develop severe gastritis.
Figure 1. IL-4 release of splenocytes after restimulation with H. pylori sonicate (Bennedsen et al., 1999)
Astaxanthin improved the cytokine IL-4 response (Th2 T-cell) to the presence of H. pylori (in vitro).
Figure 2. Gastric inflammation (antrum + corpus) (Bennedsen et al., 1999)
Astaxanthin reduced gastric inflammation in Helicobacter pylori infected mice.
Figure 3. Bacterial load (antrum + corpus) (Bennedsen et al., 1999)
Astaxanthin reduced Helicobacter pylori colonization of the stomach of infected mice.
Figure 4. Amount of lipid peroxidation products (MDA and 4-hydroxyalkenals) during H. pylori infection (Wang et al., 2000)
Lipid peroxidation levels lowered in H. pylori infected mice after treatment with astaxanthin or Vitamin C.
The success of astaxanthin in dyspepsia animal models prompted
further prospective human studies. In 1999, the first clinical study
performed in collaboration with the Centre for Digestive Diseases,
Australia, involved 10 H. pylori positive subjects (non-ulcer)
with typical dyspeptic symptoms such as heartburn and gastric pain, were
each treated with 40 mg daily dose of astaxanthin for 21 days. 10
clinical parameters assessed the efficacy before and after the treatment
period. The gastric pain, heartburn and total clinical symptoms results
showed a significant drop of 66%, 78% and 52% drop respectively (Figure
5). Furthermore, follow-up checks 27 days after the cessation of
astaxanthin intake (a total of 49 days from day 0), showed that the
dyspeptic symptoms remained low (Lignell et al., 1999). In summary, astaxanthin effectively controlled the dyspepsia symptoms, and H. pylori eradication trend was observed, but not significant.
Figure 5. Total Clinical Symptoms (Lignell et al., 1999)
Astaxanthin reduced total grade of clinical symptoms in H. pylori positive non-ulcer dyspeptic subjects after 21 days. Low symptom score continued even up to 28 days after treatment ceased.
Reflux in Non-Ulcer Dyspepsia
Approximately one in four people experience dyspepsia at some time that are linked to common causes such as food types, stress, stomach ulcers, or acid reflux (stomach acid backs-up into the esophagus). If the exact causes of non-ulcer dyspepsia are unknown, there are no standardized treatments that exist to effectively treat the patient. The usual procedure involves the problematic remedies of acid blocking medicines, painkillers or antibiotics. However, drug treatment faces problems with increasing antibiotic resistant bacteria and carries increased risk of damage to the stomach. Therefore, clinically proven non-drug treatments are becoming more attractive to physicians and patients.
Astaxanthin efficacy in non-ulcer dyspepsia was demonstrated in a randomized double-blind placebo controlled study involving 131 patients complaining of non-ulcer dyspepsia. This collaborative trial conducted by the Kaunas University Hospital, Lithuania; Rigshospitalet, Copenhagen; University of Lund and the Karolinska Institute, Sweden demonstrated that 40 mg astaxanthin treatment up to 4 weeks significantly reduced reflux compared to the 16 mg.
Figure 6. Reflux-syndrome
Reduced reflux-syndrome score of non-ulcer dyspepsia patients treated with 16 mg and 40 mg astaxanthin.
Outlook
There are considerable overlaps in a number of gastrointestinal disorders that may be treatable with conventional medicine, but what if it does not work? In that case, astaxanthin may be useful, particularly against H. pylori positive gastritis and non-ulcer dyspepsia acid reflux. The mechanisms of action include the following: decreasing oxidative stress by astaxanthin’s potent antioxidant property; controlling bacterial infection by shifting the immune response; and alleviating dyspeptic symptoms by retarding inflammation. Furthermore, these results infer that acid reflux in connection with either H. pylori positive or negative conditions can still expect improvements with astaxanthin.References
- Bennedsen M, Wang X, Willen R. Treatment of H. pylori infected mice with antioxidant astaxanthin reduces gastric inflammation, bacterial load and modulates cytokine release by splenocytes. Immunol Lett. 1999. 70: 185-189.
- Kupcinskas L, Lafolie P, Lignell A, Kiudelis G, Jonaitis L, Adamonis K, Andersen LP, Wadstrom T. Efficacy of the natural antioxidant astaxanthin in the treatment of functional dyspepsia in patients with or without Helicobacter pylori infection: A prospective, randomized, double blind, and placebo-controlled study. Phytomedicine 2008. 15: 391–399.
- Lignell A, Surace R, Bottiger P, Borody TJ. Symptom improvement in Helicobacter pylori positive non-ulcer dyspeptic patient after treatment with the carotenoid astaxanthin. In: 12th International Carotenoid Symposium, Cairns, Australia, 18-23 July 1999.
- Wang X, Willen R, Wadstrom T. Astaxanthin rich algal meal and vitamin C inhibit Helicobacter pylori infection in BALB/cA mice. Antimicrob Agents Chemother. 2000. 44: 2452-2457.
CCRES special thanks to
Mr. Mitsunori Nishida,
President of Corporate Fuji Chemical Industry Co., Ltd.
Croatian Center of Renewable Energy Sources (CCRES)
Thursday, May 1, 2014
The Effects of Astaxanthin - Type 2 Diabetes
Draining the World Wealth
Diabetes mellitus is a worldwide epidemic that is critically linked to prevalence of obesity. More than 220 million people have diabetes and by the year 2030 the figures are expected to grow to 360 million. The diabetes is aggressively growing in both emerging and developed country. According to WHO, the Asian continent has over 90 million people suffering from diabetes – India (40 million) China (29 million); Indonesia (13 million) and Japan (7 million). The prevalence of diabetic patients remains pervasive in USA (22 million), Brazil (6 million), Pakistan (8 million); Russia (6 million); Italy (5 million) and Turkey (4 million). Even in the African region over 10 million people suffer from diabetes, especially in Nigeria where it is expected to reach 5 million within the year 2030.
Diabetic complications lead to heart disease (approximately 65% of death amongst diabetics), blindness, kidney failure and amputations. As a result, the indirect and direct medical expenditure of diabetics represent almost 5 times that of a non-diabetic.
Type 2 Diabetes: A Preventable Disease
In most cases, diabetes is treated with medication, although about 20% of diabetics may be managed by lifestyle changes. This means that even if we cannot change the genetic influences, fortunately, for most of us diabetes is preventable; for example, making dietary changes, taking nutritional supplements and exercising. To highlight this, people in high risk groups who achieve a 5-7% cut in body weight will reduce risk of developing diabetes approximately 58% across all age and ethnic groups.
While the debate between the contributory effects of carbohydrate and fat intake continues unabated, research reveals a strong link between foods with high glycemic index and prevalence of type 2 diabetes. Excess blood glucose needs to be converted by insulin (produced by the pancreas ß-cells) into glycogen stores, however, when glycogen stores are full, glucose is converted into fat. Over time, the body’s cells may eventually become desensitized to insulin making it necessary to produce more insulin to achieve the same affect. It is this process that would eventually lead to a state known as hyperinsulinaemic state. As a result, the body looses its ability to control high blood glucose levels (hyperglycemia) that could result in toxic conditions and promote further complications such as kidney failure.
New Evidences Emerging from Human Studies
In an anti-aging study conducted by Iwabayashi et al., (2009), 20 female volunteers with increased oxidative stress burden ingested 12 mg/day of astaxanthin for 8 weeks. Results evidenced a significant decrease of diabetes-related parameters that collectively predict trends in diabetes development. Firstly, astaxanthin reduced cortisol by 23 percent.Astaxanthin Retards Glucose Toxicity and Kidney Damage
Astaxanthin displayed positive effects in a type 2 diabetic mouse model in that it reduced the disease progression by retarding glucose toxicity and kidney damage. This has profound implications for people who belong to high risk groups, display pre-diabetic conditions (impaired fasting glucose or impaired glucose tolerance) or want to manage advanced diabetic kidney problems (nephropathy).Studies suggested that reactive oxygen species (ROS) induced by hyperglycemia contributes to the onset of Diabetes mellitus and its complications. Non-enzymatic glycosylation of proteins and mitochondria, prevalent in diabetic conditions, is a major source of ROS. For example, pancreatic ß-cells kept in high glucose concentrations show presence of advanced glycosylation products, a source of ROS, which cause the following: i) reduction of insulin expression and ii) induction of cell death (apoptosis). ß–cells are especially vulnerable to ROS because these cells are inherently low in antioxidant status and therefore, requires long term protection. A recent study demonstrated that antioxidants (N-acetyl-L-cysteine, vitamins C and E) exerted beneficial effects in diabetic conditions such as preservation of ß-cell function, so it is likely that a more potent antioxidant such as astaxanthin can do the same or better.
In another study conducted by Preuss et al. (2009), 12 rats fed with 25mg/kg of astaxanthin show a significant decrease in insulin resistance by 13.5%.
Modulation of Glucose Toxicity
Uchiyama et al., 2002 demonstrated in obese diabetes type 2 mouse model that astaxanthin preserved pancreatic ß -cell dysfunction against oxidative damage. Treated mice received 1 mg astaxanthin/day at 6 weeks of age and then tests performed at 6, 12 and 18 weeks. Observations of astaxanthin treated mice (N=8) included: i) significantly reduced fasting glucose sugar levels at 12.
Figure 1. Astaxanthin
improved the glucose levels in the Intraperitoneally Glucose Tolerance
Test (IPGT) in diabetic mouse model (Uchiyama et al., 2002) 
Figure 2. Astaxanthin preserved insulin sensitivity in the diabetic mouse model (Uchiyama et al., 2002) 
Figure 3. Astaxanthin protected kidney function measured by urinary albumin protein loss (Naito et al., 2004)
Prevention of Diabetic Nephropathy
As well as substantiating observations by Uchiyama et al., Naito demonstrated that astaxanthin treated type 2 diabetic mice which normally shows renal insufficiency at 16 weeks of age in fact exhibited 67% less urinary albumin loss.
Figure 4. Astaxanthin reduced the amount of DNA damage indicated by urinary 8-OHdG levels (Naito et al., 2004)
Figure 5. Astaxanthin preserved the relative mesangial area.
Earlier it was unclear how astaxanthin could ameliorate the progression of diabetic nephropathy, but new evidence revealed additional information in the mechanism of action. Naito et al., (2006) examined changes in the gene expression profile of glomerular cells in diabetic mouse model during the early phase of diabetic nephropathy. The mitochondrial oxidative phosphorylation pathway was most significantly affected by high-glucose concentration (mediated via reactive oxygen species). Long term treatment with astaxanthin significantly modulated genes associated with oxidative phosphorylation, oxidative stress and the TGF-ß-collagen synthesis system.
Manabe et al., 2007 went further and analyzed normal human mesangial cells (NHMC) exposed to high glucose concentrations. In the presence of astaxanthin, it significantly suppressed ROS production (Figure 6) and inhibited nuclear translocation and activation of NF-ĸB (Figure 7) in the mitochondria of NHMC. Furthermore, this was the first time to detect astaxanthin in the mitochondrial membrane (Table 1) and its presence also suppressed ROS attack on membrane proteins.
Figure 6. Astaxanthin reduced ROS production in NHMC-mitochondria exposed to high glucose (Manabe et al., 2007)
Top
left panel: mitochondria as green fluorescence, Top right panel: ROS as
red fluorescence; Bottom right panel: Merged picture as yellow
fluorescence.
Figure 7. Astaxanthin suppressed high-glucose induced nuclear translocation and activation of NF-ĸB (Manabe et al., 2007)
Table 1. Astaxanthin
content in NHMC mitochondria expressed as percentage of total
astaxanthin added.
Mean of 3 samples. (Manabe et al., 2007) 
Outlook
Although clinical trials involving antioxidants in humans have only recently begun, these preliminary results concluded that strong antioxidant supplementation may improve type 2 diabetic control and inhibit progressive renal damage by circumventing the effects of glycation-mediated ROS under hyperglycemic conditions. Astaxanthin improved pancreas function, insulin sensitivity, reduced kidney damage and glucose toxicity in diabetic mouse models. New techniques by gene chip analysis and fluorescence imaging revealed further details of mechanism and site of protection by astaxanthin. Further research and clinical studies are still required. However, it is reasonable to suggest that astaxanthin may be useful as part of a nutrigenomic strategy for type 2 diabetes and diabetic nephropathy.References
- Forefront (Summer/Fall) 2005, American Diabetes Association.
- Functional Foods & Nutraceuticals June 2004. "The dietary solution to diabetes."
- HSR Health Supplement Retailer July 2004. "Fighting Diabetes the natural way."
- Iwabayashi M, Fujioka N, Nomoto K, Miyazaki R, Takahashi H, Hibino S, Takahashi Y, Nishikawa K, Nishida M, Yonei Y. (2009). Efficacy and safety of eight-week treatment with astaxanthin in individuals screened for increased oxidative stress burden. J. Anti Aging Med., 6 (4):15-21.
- Manabe E, Handa O, Naito Y, Mizushima K, Akagiri S, Adachi S, Takagi T, Kokura S, Maoka T, Yoshikawa T. (2008). Astaxanthin protects mesangial cells from hyperglycemia-induced oxidative signaling. J. Cellular Biochem. 103 (6):1925-37.
- Naito Y, Uchiyama K, Aoi W, Hasegawa G, Nakamura N, Yoshida N, Maoka T, Takahashi J, Yoshikawa T. (2004) Prevention of diabetic nephropathy by treatment with astaxanthin in diabetic db/db mice. BioFactors 20:49-59. Nutritional Outlook April. "Fighting Diabetes"
- Naito Y, Uchiyama K, Mizushima K, Kuroda M, Akagiri S, Takagi T, Handa O, Kokura S, Yoshida N, Ichikawa H, Takahashi J, Yoshikawa T. (2006). Microarray profiling of gene expression patterns in glomerular cells of astaxanthin-treated diabetic mice: a nutrigenomic approach. Int. J. Mol. Med.,18:685-695.
- Preuss H, Echard B, Bagchi D, Perricone VN, Yamashita E. (2009). Astaxanthin lowers blood pressure and lessens the activity of the renin-angiotensin system in Zucker Fatty Rats. J. Funct. Foods, I:13-22.
- The Global Diabetes Community. http://www.diabetes.co.uk. Article retrieved on June 8th, 2010.
- Uchiyama K, Naito Y, Hasegawa G, Nakamura N, Takahashi J, Yoshikawa T. (2002). Astaxanthin Protects β–cells against glucose toxicity in diabetic db/db mice. Redox Rep., 7(5):290-293.
CCRES special thanks to
Mr. Mitsunori Nishida,
President of Corporate Fuji Chemical Industry Co., Ltd.
Croatian Center of Renewable Energy Sources (CCRES)
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