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Sabtu, 19 Februari 2011

Algae



Algae
Laurencia, a marine genus of Red Algae from Hawaii.
Laurencia, a marine genus of Red Algae from Hawaii.
Scientific classification
Domain:Eukaryota
Included groups
Excluded groups

The lineage of algae according to Thomas Cavalier-Smith. The exact number and placement ofendosymbiotic events is not yet clear, so this diagram can be taken only as a general guide[1][2] It represents the most parsimonious way of explaining the three types of endosymbiotic origins of plastids. These types include the endosymbiotic events ofcyanobacteriared algae and green algae, leading to the hypothesis of the supergroups Archaeplastida,Chromalveolata and Cabozoa respectively. However, the monophyly of Cabozoa has been refuted and the monophylies of Archaeplastida and Chromalveolata are currently strongly challenged. Endosymbiotic events are noted by dotted lines.
Algae (pronounced /ˈældʒiː/ or /ˈælɡiː/; singular alga /ˈælɡə/Latin for "seaweed") are a large and diverse group of simple, typically autotrophic organisms, ranging fromunicellular to multicellular forms, such as the giant kelps that grow to 65 meters in length. The US Algal Collection is represented by almost 300,000 accessioned and inventoried herbarium specimens.[3] The largest and most complex marine forms are called seaweeds. They are photosynthetic like plants, and "simple" because their tissues are not organized into the many distinct organs found in land plants.
Though the prokaryotic cyanobacteria (commonly referred to as blue-green algae) were traditionally included as "algae" in older textbooks, many modern sources regard this as outdated as they are now considered to be bacteria. The term algae is now restricted to eukaryotic organisms. All true algae therefore have a nucleus enclosed within a membrane and plastids bound in one or more membranes.Algae constitute a paraphyletic and polyphyletic group, as they do not include all the descendants of the last universal ancestor nor do they all descend from a common algal ancestor, although their plastids seem to have a single origin.Diatoms are also examples of algae.
Algae are found in the fossil record dating back to approximately 3 billion years in thePrecambrian. They exhibit a wide range of reproductive strategies, from simple, asexualcell division to complex forms of sexual reproduction.
Algae lack the various structures that characterize land plants, such as phyllids (leaves) and rhizoids in nonvascular plants, or leavesroots, and other organs that are found intracheophytes (vascular plants). Many are photoautotrophic, although some groups contain members that are mixotrophic, deriving energy both from photosynthesis and uptake of organic carbon either by osmotrophymyzotrophy, or phagotrophy. Some unicellular species rely entirely on external energy sources and have limited or no photosynthetic apparatus.
Nearly all algae have photosynthetic machinery ultimately derived from theCyanobacteria, and so produce oxygen as a by-product of photosynthesis, unlike other photosynthetic bacteria such as purple and green sulfur bacteria. Fossilized filamentous algae from the Vindhya basin have been dated back to 1.6 to 1.7 billion years ago.


Etymology and study

Title page of Samuel Gottlieb GmelinHistoria Fucorum, dated 1768.
The singular alga is the Latin word for a particular seaweed and retains that meaning in English.The etymology is obscure. Although some speculate that it is related to Latin algēre, "be cold", there is no known reason to associate seaweed with temperature. A more likely source isalliga, "binding, entwining."Since Algae has become a biological classification, alga can also mean one classification under Algae, parallel to a fungus being a species of fungi, a plant being a species of plant, and so on.
The ancient Greek word for seaweed was φῦκος(fūkos or phykos), which could mean either the seaweed, probably Red Algae, or a red dye derived from it. The Latinization, fūcus, meant primarily the cosmetic rouge. The etymology is uncertain, but a strong candidate has long been some word related to the Biblical פוך (pūk), "paint" (if not that word itself), a cosmetic eye-shadow used by the ancient Egyptians and other inhabitants of the eastern Mediterranean. It could be any color: black, red, green, blue.
Accordingly the modern study of marine and freshwater algae is called either phycology or algology. The name Fucus appears in a number of taxa.The singular form is alga.

Classification


False-colour Scanning electron micrograph of the unicellular coccolithophoreGephyrocapsa oceanica.
While Cyanobacteria have been traditionally included among the Algae, recent works usually exclude them due to large differences such as the lack of membrane-bound organelles, the presence of a single circular chromosome, the presence of peptidoglycan in the cell walls, and ribosomes different in size and content from those of the Eukaryotes. Rather than in chloroplasts, they conduct photosynthesis on specialized infolded cytoplasmic membranes calledthylakoid membranes. Therefore, they differ significantly from the Algae despite occupying similar ecological niches.
By modern definitions Algae are Eukaryotes and conduct photosynthesis within membrane-bound organelles called chloroplasts. Chloroplasts contain circularDNA and are similar in structure to Cyanobacteria, presumably representing reduced cyanobacterial endosymbionts. The exact nature of the chloroplasts is different among the different lines of Algae, reflecting different endosymbiotic events. The table below describes the composition of the three major groups of Algae. Their lineage relationships are shown in the figure in the upper right. Many of these groups contain some members that are no longer photosynthetic. Some retain plastids, but not chloroplasts, while others have lost plastids entirely. The singular form is alga.
Phylogeny based on plastid.not nucleocytoplasmic genealogy:






Rhodoplasts











Chloroplasts



















Supergroup affiliationMembersEndosymbiontSummary
Primoplantae/
Archaeplastida
CyanobacteriaThese Algae have primary chloroplasts, i.e. the chloroplasts are surrounded bytwo membranes and probably developed through a single endosymbiotic event. The chloroplasts of Red Algae have chlorophylls a and c (often), andphycobilins, while those of Green Algae have chloroplasts with chlorophyll aand b. Higher plants are pigmented similarly to Green Algae and probably developed from them, and thus Chlorophyta is a sister taxon to the plants; sometimes they are grouped as Viridiplantae.
Excavata andRhizariaGreen Algae
These groups have green chloroplasts containing chlorophylls a and b.[14]Their chloroplasts are surrounded by four and three membranes, respectively, and were probably retained from ingested Green Algae.
Chlorarachniophytes, which belong to the phylum Cercozoa, contain a smallnucleomorph, which is a relict of the algae's nucleus.
Euglenids, which belong to the phylum Euglenozoa, live primarily in freshwater and have chloroplasts with only three membranes. It has been suggested that the endosymbiotic Green Algae were acquired throughmyzocytosis rather than phagocytosis.
Chromista andAlveolataRed Algae
These groups have chloroplasts containing chlorophylls a and c, and phycobilins.The shape varies from plant to plant. they may be of discoid, plate-like, reticulate, cup-shaped, spiral or ribbon shaped. They have one or more pyrenoids to preserve protein and starch. The latter chlorophyll type is not known from any prokaryotes or primary chloroplasts, but genetic similarities with the Red Algae suggest a relationship there[citation needed].
In the first three of these groups (Chromista), the chloroplast has four membranes, retaining a nucleomorph in Cryptomonads, and they likely share a common pigmented ancestor, although other evidence casts doubt on whether the HeterokontsHaptophyta, and Cryptomonads are in fact more closely related to each other than to other groups.
The typical dinoflagellate chloroplast has three membranes, but there is considerable diversity in chloroplasts within the group, and it appears there were a number of endosymbiotic events.The Apicomplexa, a group of closely related parasites, also have plastids called apicoplasts. Apicoplasts are not photosynthetic but appear to have a common origin with Dinoflagellatechloroplasts.
W.H.Harvey (1811—1866) was the first to divide the Algae into four divisions based on their pigmentation. This is the first use of a biochemical criterion in plant systematics. Harvey's four divisions are: Red Algae (Rhodophyta), Brown Algae (Heteromontophyta), Green Algae (Chlorophyta) and Diatomaceae.

Relationship to higher plants

The first plants on earth evolved from shallow freshwater algae much like Chara some 400 million years ago. These probably had an isomorphic alternation of generations and were probably filamentous. Fossils of isolated land plant spores suggest land plants may have been around as long as 475 million years ago.
Morphology

The kelp forest exhibit at the Monterey Bay Aquarium. A three-dimensional, multicellular thallus.
A range of algal morphologies are exhibited, and convergence of features in unrelated groups is common. The only groups to exhibit three dimensional multicellular thalli are thereds and browns, and some chlorophytes.Apical growth is constrained to subsets of these groups: the florideophyte reds, various browns, and the charophytes. The form ofcharophytes is quite different to those of reds and browns, because have distinct nodes, separated by internode 'stems'; whorls of branches reminiscent of the horsetails occur at the nodes. Conceptacles are another polyphyletic trait; they appear in the coralline algaeand the Hildenbrandiales, as well as the browns.
Most of the simpler algae are unicellular flagellates or amoeboids, but colonial and non-motile forms have developed independently among several of the groups. Some of the more common organizational levels, more than one of which may occur in the life cycle of a species, are
  • Colonial: small, regular groups of motile cells
  • Capsoid: individual non-motile cells embedded in mucilage
  • Coccoid: individual non-motile cells with cell walls
  • Palmelloid: non-motile cells embedded in mucilage
  • Filamentous: a string of non-motile cells connected together, sometimes branching
  • Parenchymatous: cells forming a thallus with partial differentiation of tissues
In three lines even higher levels of organization have been reached, with full tissue differentiation. These are the brown algae,-some of which may reach 50 m in length (kelps)—the red algae, and the green algae. The most complex forms are found among the green algae (see Charales and Charophyta), in a lineage that eventually led to the higher land plants. The point where these non-algal plants begin and algae stop is usually taken to be the presence of reproductive organs with protective cell layers, a characteristic not found in the other alga groups.

Symbiotic algae

Some species of algae form symbiotic relationships with other organisms. In these symbioses, the algae supply photosynthates (organic substances) to the host organism providing protection to the algal cells. The host organism derives some or all of its energy requirements from the algae. Examples are as follows.

Lichens


Rock lichens in Ireland.
Lichens are defined by the International Association for Lichenology to be "an association of afungus and a photosynthetic symbiont resulting in a stable vegetative body having a specific structure."The fungi, or mycobionts, are from the Ascomycota with a few from theBasidiomycota. They are not found alone in nature but when they began to associate is not known. One mycobiont associates with the same phycobiont species, rarely two, from theGreen Algae, except that alternatively the mycobiont may associate with the same species ofCyanobacteria (hence "photobiont" is the more accurate term). A photobiont may be associated with many specific mycobionts or live independently; accordingly, lichens are named and classified as fungal species.The association is termed a morphogenesis because the lichen has a form and capabilities not possessed by the symbiont species alone (they can be experimentally isolated). It is possible that the photobiont triggers otherwise latent genes in the mycobiont.
Coral reefs

Floridian coral reef
Coral reefs are accumulated from the calcareous exoskeletons of marine invertebrates of theScleractinia order; i.e., the Stony Corals. As animals they metabolize sugar and oxygen to obtain energy for their cell-building processes, including secretion of the exoskeleton, withwater and carbon dioxide as byproducts. As the reef is the result of a favorable equilibrium between construction by the corals and destruction by marine erosion, the rate at which metabolism can proceed determines the growth or deterioration of the reef.
Algae of the Dinoflagellate phylum are often endosymbionts in the cells of marine invertebrates, where they accelerate host-cell metabolism by generating immediately available sugar and oxygen through photosynthesis using incident light and the carbon dioxide produced in the host. Endosymbiont algae in the Stony Corals are described by the term zooxanthellae, with the host Stony Corals called on that account hermatypic corals, which although not a taxon are not in healthy condition without their endosymbionts. Zooxanthellae belong almost entirely to the genus Symbiodinium.The loss ofSymbiodinium from the host is known as coral bleaching, a condition which unless corrected leads to the deterioration and loss of the reef.
Sea sponges
Green Algae live close to the surface of some sponges, for example, breadcrumb sponge (Halichondria panicea). The alga is thus protected from predators; the sponge is provided with oxygen and sugars which can account for 50 to 80% of sponge growth in some species.

Life-cycle

RhodophytaChlorophyta and Heterokontophyta, the three main algal Phyla, have life-cycles which show tremendous variation with considerable complexity. In general there is an asexual phase where the seaweed's cells are diploid, a sexual phase where the cells arehaploid followed by fusion of the male and female gametes. Asexual reproduction is advantageous in that it permits efficient population increases, but less variation is possible. Sexual reproduction allows more variation, but is more costly. Often there is no strict alternation between the sporophyte and also because there is often an asexual phase, which could include the fragmentation of the thallus.

Numbers


Algae on coastal rocks at Shihtiping inTaiwan
The Algal Collection of the U.S. National Herbarium (located in the National Museum of Natural History) consists of approximately 320500 dried specimens, which, although not exhaustive (no exhaustive collection exists), gives an idea of the order of magnitude of the number of algal species (that number remains unknown).Estimates vary widely. For example, according to one standard textbook, in the British Isles the UK Biodiversity Steering Group Reportestimated there to be 20000 algal species in the UK. Another checklist reports only about 5000 species. Regarding the difference of about 15000 species, the text concludes: "It will require many detailed field surveys before it is possible to provide a reliable estimate of the total number of species ...."
Regional and group estimates have been made as well: 5000—5500 species of Red Algae worldwide, "some 1300 in Australian Seas,"400 seaweed species for the western coastline of South Africa,669 marine species from California (U.S.A.),642 in the check-list of Britain and Ireland,and so on, but lacking any scientific basis or reliable sources, these numbers have no more credibility than the British ones mentioned above. Most estimates also omit the microscopic Algae, such as the phytoplankta, entirely.

Distribution

The topic of distribution of algal species has been fairly well studied since the founding of phytogeography in the mid-19th century AD.Algae spread mainly by the dispersal of spores analogously to the dispersal of Plantae by seeds and spores. Spores are everywhere in all parts of the Earth: the waters fresh and marine, the atmosphere, free-floating and in precipitation or mixed with dust, the humus and in other organisms, such as humans. Whether a spore is to grow into an organism depends on the combination of the species and the environmental conditions of where the spore lands.
The spores of fresh-water Algae are dispersed mainly by running water and wind, as well as by living carriers.The bodies of water into which they are transported are chemically selective. Marine spores are spread by currents. Ocean water is temperature selective, resulting in phytogeographic zones, regions and provinces.
To some degree the distribution of Algae is subject to floristic discontinuities caused by geographical features, such as Antarctica, long distances of ocean or general land masses. It is therefore possible to identify species occurring by locality, such as "Pacific Algae" or "North Sea Algae". When they occur out of their localities, it is usually possible to hypothesize a transport mechanism, such as the hulls of ships. For example, Ulva reticulata and Ulva fasciata travelled from the mainland to Hawaii in this manner.
Mapping is possible for select species only: "there are many valid examples of confined distribution patterns."For example,Clathromorphum is an arctic genus and is not mapped far south of there. On the other hand, scientists regard the overall data as insufficient due to the "difficulties of undertaking such studies."

Locations


Phytoplankton, Lake Chuzenji
Algae are prominent in bodies of water, common in terrestrial environments and are found in unusual environments, such as on snow and on ice. Seaweeds grow mostly in shallow marine waters, under 100 metres (330 ft); however some have been recorded to a depth of 360 metres (1,180 ft).
The various sorts of algae play significant roles in aquatic ecology. Microscopic forms that live suspended in the water column (phytoplankton) provide the food base for most marine food chains. In very high densities (algal blooms) these algae may discolor the water and outcompete, poison, or asphyxiate other life forms.
Algae are variously sensitive to different factors, which has made them useful as biological indicators in the Ballantine Scale and its modification.

Uses


Harvesting Algae


Agar

Agar, a gelatinous substance derived from red algae, has a number of commercial uses.


Alginates

Between 100,000 and 170,000 wet tons of Macrocystis are harvested annually in Californiafor alginate extraction and abalone feed.


Energy source

To be competitive and independent from fluctuating support from (local) policy on the long run, biofuels should equal or beat the cost level of fossil fuels. Here, algae based fuels hold great promise, directly related to the potential to produce more biomass per unit area in a year than any other form of biomass. The break-even point for algae-based biofuels should be within reach in about ten to fifteen years.

Fertilizer


Seaweed is used as a fertilizer.
For centuries seaweed has been used as a fertilizer; George Owen of Henllys writing in the 16th century referring to drift weed in South Wales:
This kind of ore they often gather and lay on great heapes, where it heteth and rotteth, and will have a strong and loathsome smell; when being so rotten they cast on the land, as they do their muck, and thereof springeth good corn, especially barley ... After spring-tydes or great rigs of the sea, they fetch it in sacks on horse backes, and carie the same three, four, or five miles, and cast it on the lande, which doth very much better the ground for corn and grass.
Today Algae are used by humans in many ways; for example, as fertilizerssoil conditioners and livestock feed. Aquatic and microscopic species are cultured in clear tanks or ponds and are either harvested or used to treat effluents pumped through the ponds. Algaculture on a large scale is an important type of aquaculture in some places. Maerl is commonly used as a soil conditioner.


Nutrition


Seaweed gardens on Inisheer.
Naturally growing seaweeds are an important source of food, especially in Asia. They provide many vitamins including: A, B1B2B6niacin and C, and are rich in iodine,potassiumironmagnesium and calcium.In addition commercially cultivatedmicroalgae, including both Algae and Cyanobacteria, are marketed as nutritional supplements, such as Spirulina,Chlorella and the Vitamin-C supplement, Dunaliella, high in beta-carotene.
Algae are national foods of many nations: China consumes more than 70 species, including fat choy, a cyanobacterium considered a vegetable; Japan, over 20 species;IrelanddulseChilecochayuyo.Laver is used to make "laver bread" in Wales where it is known as bara lawr; in Koreagim; in Japannori and aonori. It is also used along the west coast of North America from California to British Columbia, in Hawaii and by the Māori of New ZealandSea lettuce and badderlocksare a salad ingredient in ScotlandIrelandGreenland and Iceland.

Dulse, a food.
The oils from some Algae have high levels of unsaturated fatty acids. For example, Parietochloris incisa is very high in arachidonic acid, where it reaches up to 47% of the triglyceride pool. Some varieties of Algae favored by vegetarianism and veganism contain the long-chain, essential omega-3 fatty acidsDocosahexaenoic acid (DHA) and Eicosapentaenoic acid (EPA), in addition to vitamin B12.[citation needed] The vitamin B12 in algae is not biologically active. Fish oil contains the omega-3 fatty acids, but the original source is algae (microalgae in particular), which are eaten by marine life such as copepods and are passed up the food chain.Algae has emerged in recent years as a popular source of omega-3 fatty acids for vegetarians who cannot get long-chain EPA and DHA from other vegetarian sources such as flaxseed oil, which only contains the short-chain Alpha-Linolenic acid (ALA).


Pollution control

  • Sewage can be treated with algae, reducing the need for greater amounts of toxic chemicals than are already used.
  • Algae can be used to capture fertilizers in runoff from farms. When subsequently harvested, the enriched algae itself can be used as fertilizer.
Agricultural Research Service scientists found that 60-90% of nitrogen runoff and 70-100% of phosphorus runoff can be captured frommanure effluents using an algal turf scrubber (ATS). Scientists developed the ATS, which are shallow, 100-foot raceways of nylon netting where algae colonies can form, and studied its efficacy for three years. They found that algae can readily be used to reduce the nutrient runoff from agricultural fields and increase the quality of water flowing into rivers, streams, and oceans. The enriched algae itself also can be used as a fertilizer. Researchers collected and dried the nutrient-rich algae from the ATS and studied its potential as an organic fertilizer. They found that cucumber and corn seedlings grew just as well using ATS organic fertilizer as they did with commercial fertilizers.


Pigments

The natural pigments produced by algae can be used as an alternative to chemical dyes and coloring agents.


Stabilizing substances

Carrageenan, from the red alga Chondrus crispus, is used as a stabiliser in milk products.

Jumat, 11 Februari 2011

Jaringan Hewan II

Struktur tubuh hewan tersusun atas sel, jaringan, organ dan system organ. Berbagai struktur organ akan menyusun individu. Sel hewan adalah unit terkecil secara structural dan fungsional penyusun individu hewan. Untuk mendukung fungsi tersebut sel tersusun oleh organel. Jaringan adalah kumpulan sel-sel yang mempunyai struktur dan fungsi yang sama terdapat empat jaringan utama penyusun individu, yaitu jaringan epithelium, jaringan ikat, jaringan otot dan jaringan saraf.

A. Jaringan Hewan
Jaringan epithelium
Berfungsi untuk melindungi permukaan luar dan dalam organ.

Berdasarkan struktur :
-Epithelium pipih (squamous)
-Epithelium batang (columnar/silindris)
-Epithelium kubus (cuboidal)

Berdasarkan susunan sel terdapat epithelim sederhana dan epithelium komplex:
Epithelium pipih
-epithelium pipih selapis
  Untuk proeses difusi,osmosis, filtrsai dan sekresi.
  Terdapat pada pembuluh limfe, pembuluh darah kapiler, selaput
  pembungkus jantung, selaput perut.

-epithelium pipih berlapis
  Sebagai pelindung
  Terdapat pada epithelium rongga mulut, rongga hidung, esophagus.

Epithelium silindris

-epithelium silindris berlapis tunggal
  Untuk penyerapan sari-sari makanan pada usus halus(jejunum dan
  Ileum) dan untuk sekeresi sebagai sel kelenjar.

-epithelium silindris berlapis banyak
  Sebagai pelindung dan sekresi
-epithelium berlapis banyak semu (pseudocolumner)
  Untuk proteksi, sekresi dan gerakan yang melalui permukaan.

Epithelium kubus

-epithelium kubus berlapis tunggal
  Untuk sekresi dan pelindung
  Terdapat pada lensa mata dan nefron ginjal

-epithelium kubus berlapis benyak
  Sebagai pelindung dari gesekan dan pengelupasan,sekresi dan
  absorbsi.

berlapis banyak
Epithelium Transisional
Merupakan jaringan epithelium yang tidak dapat dikelompokkan berdasarkan bentuknya karena bentuknya berubah seiring dengan berjalannya fungsinya.
Terdapat pada ereter, urethra, kantong kemih.

Epithelium kelenjar
Merupakan jaringan epitjelium yang khusus berperan untuk sekresi zat untuk membantu proses fisiologis.
Dibedakan menjadi kelenjar eksokren dan endokren:
-Kelenjar eksokren
  Kelenjar yang berada di jaringan kulit atau bawah kulit
  Untuk membantu metabolisme dan komunikasi
-Kelenjar endokren
  Kelenjar yang terlaetak di dalam tubuh dan sering disebut sebgai kelenjar buntu karena tidak mempunyai saluran bagi sekretya sehingga sekretnya langsung dilepas ke darah.
  Fungsi untuk metabolisme

Jaringan ikat biasa
Berfungsi untuk melindungi jaringan dan organ dan mengikat sel-sel untuk membentuk jaringan dan mengikat jaringan dan jaringan untuk membentuk organ.

Jaringan ikat tersusun atas matriks dan sel-sel penyusun jaringan ikat.

Matriks adalah bahan dasar sesuatu melekat.

Sel-sel jaringan ikat:
Fibroblas : berbentuk serat dan berfungsi untuk mensekresikan protein untuk membentuk matriks
Makrophag : tidak mempunyai bentuk tetap dan terspesialisasi menjadi fagositosis
Sel lemak : menyerupai fibroblas dan berfungsi untuk menimbun lemak
Sel plasma : Berbentuk seperti eritrosit dan berfungsi utnuk meghasilkan antibody.
Sel tiang (mast cell) : berfungsi untuk heparin dan histamine
  
Jaringan ikat berdasarkan struktur dan fungsinya:
Jaringan ikat longgar
Bersifat elastis karena matriksnya mengandung serat kolagen, retikuler dan elastin.
Berfungsi sebagai pembungkus organ-organ tubuh dan menghubungkan bagian-bagian dari jaringan lainnya.
Jaringan ikat padat
Bersifat tidak elastis karena matriksnya tersusun atas serat kolagen yang berwarna putih dan padat sehingga cairannya berkurang.
Berfungsi untuk menghubungkan berbagai organ tubuh seperti pada katub jantung, kapsul persendian, fasia, tendon dan ligamen.


Kartilago (Tulang Rawan)
Berfungsi untuk memperkuat yang bersifat fleksibel pada rangka baik pada embrio maupun pada saat dewasa.

Berdasarkan susunan dan matriksnya, kartilago dibedakan menjadi tiga, yaitu :
Kartilago Hyalin
Matriksnya berwarna putih kebiruan dan transparan, dengan konsentrasi serat elastis yang tinggi.
Berperan sebagai rangka pada saat embrio, pada orang dewasa terdapat melapisi permukaan sendi antartulang persendian, saluran pernafasan dan ujung tulang rusuk yang melekat pada tulang dada.
Kartilago fibrosa
Matriksnya berwarna gelap dan keruh, dengan serabut kolagen yang tersusun sejajar dan membentuk satu berkas sehingga bersifat keras.
Kartilago elastis
Matriksnya berwarna kuning dengan serabut kolagen yang berbentuk seperti jala.

Osteon (Jaringan Tulang Sejati)
Berdasarkan kepadatan matriks ada atau tidak ada rongga di dalamnya , tulang dibedakan menjadi dua, yaitu :
Tulang kompak (keras)
Tersusun atas matriks yang rapat.

Tulang Spons (bunga karang)
Matriksnya tersusun longgar.



Jaringan darah
Berfungsi untuk pengangkutan CO2 dan O2, sari-sari makanan, hormon, sisa metabolisme dan alat pertahanan tubuh.

 darah

Komponen penyusunnya adalah eritrosit (sel darah merah), leukosit (sel darah puith), dan trombosit (keping darah).
Eritrosit
Tidak mempunyai inti sel dan sitoplasmanya mengandung hemoglobin.
Leukosit
Mengandung inti sel dan dapat bergerak.
Terbagi menjadi dua, yaitu leukosit agranuler dan leukosit granuler.
Trombosit
Tidak memiliki inti dan mudah pecah apabila menyentuh permukaan yang kasar.
Dapat melepaskan enzim tromboplastin yang berperan dalam pembekuan darah.

Limfe (Jaringan Getah Bening)
Tersusun atas sel-sel limfosit dan makrophag serta serat-serat retikuler yang menjadi rangka untuk menahan timbunan lim[posit dan macrophage.


Jaringan Otot
Tersusun atas sel-sel otot. Mempunyai sifat kontraktibilitas dan relaksibilitas.


Jaringan otot berdasarkan struktur penyusunnya dibedakan menjadi tiga, yaitu:
Otot Polos
Bekerja lamban tidak di bawah pengaruh otak.
Otot Jantung
Merupkan otot khusus penyusun organ jantung.
Keistimewaanya adalah bekerja tidak di bawah pengaruh otak namun dapat berkontraksi secara ritmis dan terus menerus.
Otot lurik
Berkontraksi cepat tetapi tidak mampu bekerja dalam waktu yang lama. Otot lurik bekerja di bawah pengaruh otak dan melekat pada rangka tubuh sehingga sering disebut sebagai otot rangka.

Jaringan Lemak
Tersusun atas sel-sel lemak dan matriks. Jaringan lemak bersal dari sel-sel mesenkim.
Fungsi jaringan lemak adalah untuk cadangan energi,penjaga kestabilan tubuh danproteksi mekanis.

Jaringan Syaraf
Jaringan syaraf tersusun atas sel-sel syaraf (neuron). Jaringan syaraf merupakan perkembangan dari lapisan embrional ectoderm. Jaringan syaraf sangat penting untuk mengatur kerja organ-organ tubuh bersama system hormon.
  
Organ Hewan

Merupakan gabungan dari beberapa jaringan yang berbeda-beda untk mendukung satu fungsi atau lebih.

Berdasarkan letaknya organ dikelompokkan menjadi dua macam, yaitu organ dalam dan organ luar. Organ dalam misalnya hati dan jantung. Organ luar misalnya kulit, mata, telinga dan hidung.

Sistem Organ

Sistem organ adalah gabungan dari beberapa organ yang melaksanakan satu fungsi dalam koordinasi tertentu. Pada tubuh hewan tingkat tinggi setidaknya terdapat 9 macam system organ.

Transplantasi Organ

Transplantasi organ adalah proses pencangkokan organ tubuh manusia atau hewan yang satu ke manusia atau hewan yang lainnya.

Transplantasi paling aman jika jaringan atau organ yang ditransplantasikan barasal dari tubuh sendiri, Contohnya kulit.

Jaringan Hewan

Jaringan Pada Hewan – ada tubuh hewan tungkat tinggi (Vertebrata) terdapat berbagai macam jaringan yang dapat dikelompokkan menjadi jaringan merismatik, jaringan epithelium, jaringan ikat, jaringan otot, dan jaringan saraf.
a. Jaringan Meristematik
Jaringan meristematik adalah jaringan yang sel-selnya selalu membelah. Jaringan ini terdapat pada fase embrio. Pada tubuh manusia dan hewan vertebrata, jaringan meristematik terdapat hanya pada bagian tertentu. Misalnya, pada ujung tulang pipa yang masih muda dan pada sumsum tulang belakang yang membentuk sel-sel darah.

b. Jaringan Epitel atau Jaringan Kulit
Jaringan epitel merupakan jaringan yang menutupi jaringan lain. Jaringan ini meliputi epitel sederhana dan epitel berlapis. Jaringan epitel sederhana hanya terdiri dari satu lapis sel. Contohnya adalah jaringan epitel pipa sebelah dalam. Jaringan epitel berlapis terdiri atas beberapa lapis sel. Contohnya epitel usus dan saluran pernafasan. Jaringan epitel ada yang bersilia, misalnya pada saluran pernafasan. Silia tersebut berguna untuk menerima rangsangan dari luar, misalnya jika ada debu kita akan bersin. Epitel yang berada di luar tubuh biasanya disebut epidermis (epi = tepi, dan derm = kulit) misalnya pada kulit. Sebaiknya, epitel yang menutupi bagian dalam organ tubuh disebut endodermis.
c. Jaringan Ikat
Jaringan ikat merupakan jaringan yang menghubungkan antara jaringan yang satu dengan jaringan yang lain. Fungsi jaringan ikat antara lain sebagai berikut :
• Melekatkan suatu jaringan ke jaringan lain.
• Membungkus organ
• Mengisi rongga di antar organ.
• Mengangkut zat oksigen dan makanan kejaringan lain.
• Mengangkut sisa-sisa metabolisme kealat pengeluaran.
• Menghasilkan kekebalan.
Jaringan ikat dapat dikelompokkan menjadi jaringan ikat biasa, jaringan ikat khusus, jaringan ikat penyokong, dan jaringan ikat penghubung.
1.Jaringan ikat biasa
Jaringan ikat biasa dibedakan menjadi jaringan ikat padat dan jaringan ikat longgar. Jaringan ikat padat misalnya jaringan pada tendon otot. Tendon otot adalah ujung berkas otot yang melekat pada tulang. Jaringan ikat longgar merupakan jaringan pengisi ruangan di antara organ-organ.
2. Jaringan ikat khusus
Jaringan ikat khusus mempunyai fungsi khusus, misalnya menyimpan energi dalam bentuk lemak, menahan goncangan, dan membentuk darah. Contoh jaringan ikat khusus adalah jaringan lemak yang ada di bawah kulit.
3.Jaringan ikat penyokong
Jaringan ikat penyokong terdiri dari jaringan tulang rawan dan jaringan tulang sejati. Jaringan tulang sejati juga berfungsi
untuk menghasilkan sel darah merah (eritrosit).
4.Jaringan ikat penghubung
Jaringan ikat penghubung terdiri atas darah dan limfa. Jaringan darah terdiri atas plasma darah dan butiran darah. Butiran darah terdiri dari sel darah merah (eritrosit), sel darah putih (leukosit), dan keeping darah (trombosit). Jaringan darah berfungsi mengangkut oksigen, karbondioksida, sari makanan, zat-zat sisa, dan hormon. Jaringan limfa terdiri dari cairan limfa yang beredar pada pembuluh limfa. Cairan limfa berfungsi untuk mengangkut lemak.
d.Jaringan Otot
Jaringan otot terdiri atas otot rangka, otot polos dan otot jantung. Jaringan otot berfungsi sebagai penggerak. Jaringan otot rangka terdiri atas sel-sel otot yang apabila diamati dengan mikroskop memiliki garis gelap dan terang berselang-seling. Karena itu sel otot rangka dikenal pula sebagai sel otot lurik atau sel otot bergaris melintang. Sel otot rangka mempunyai banyak inti. Sel otot lurik bekerja karena pengaruh kehendak kita. Sel otot polos terdapat pad organ dalam,
misalnya di usus dan pembuluh darah. Serabut kontraktil otot polos tidak memiliki garis gelap dan terang. Sel otot polos berbentuk gelondong dan berinti satu. Kerja otot polos tidak dipengaruhi kehendak kita. Otot jantung terdiri dari sel-sel yang memiliki garis gelap dan terang seperti otot lurik, tapi bekerja di luar kehendak kita.
e.Jaringan Saraf
Jaringan saraf terdiri dari sel-sel saraf (neuron) dan serabut saraf. Jaringan saraf berfungsi sebagai penghantar rangsang, yakni membawa rangsang dari alat penerima rangsang (reseptor) ke otak kemudian diteruskan ke otot. Jaringan saraf hanya dimiliki hewan dan manusia

Jaringan pengangkut


Jaringan pengangkut (vascular tissue) adalah salah satu dari tiga kelompok jaringan permanen yang dimiliki tumbuhan hijau berpembuluh (Tracheophyta). Jaringan ini disebut juga pembuluh dan berfungsi utama sebagai saluran utama transportasi zat-zat harayang diperlukan dalam proses vital tumbuhan.

Ada dua kelompok jaringan pengangkut, berdasarkan arah aliran hara. Pembuluh kayu (xilem) mengangkut cairan menuju daun. Sumbernya dapat berasal dari akar (yang utama) maupun dari bagian lain tumbuhan. Pembuluh tapis (floem) mengangkut hasil fotosintesis(terutama gula sukrosa) dan zat-zat lain dari daun menuju bagian-bagian tubuh tumbuhan yang lain. Baik pembuluh kayu maupun pembuluh tapis memiliki beberapa tipe sel yang agak berbeda.
Pada akar dan batang, pembuluh kayu dan tapis biasanya tersusun konsentris: pembuluh kayu berada di bagian dalam sedangkan pembuluh tapis di bagian luarnya. Terdapat beberapa perkecualian pada susunan ini. Sebagian anggota Asteraceae memiliki posisi yang terbalik. Di antara keduanya terdapat lapisan kambium pembuluh/vaskular. Kambium inilah yang merupakan jaringan meristematik yang membentuk kedua jaringan pengangkut tadi.
Pada daun, kedua pembuluh ini akan terletak berdampingan dan jaringannya tersusun pada tulang daun maupun susunan jala yang tampak pada daun. Kedua jaringan ini akan disatukan dalam berkas-berkas (bundles) yang direkatkan oleh pektin dan selulosa. Pada daun jagung dan tumbuhan C4 tertentu lainnya, berkas-berkas ini terlindungi oleh sel-sel khusus – dikenal sebagai sel-sel seludang berkas(bundle sheath) – yang secara fisiologi berperan dalam jalur fotosintesis yang khas. Pembuluh tapis biasanya terletak di sisi bawah (abaksial) atau punggung daun, sedangkan pembuluh kayu berada pada sisi yang lainnya (adaksial). Ini menjadi penyebab kutu daun lebih suka bertengger pada sisi punggung daun karena mereka lebih mudah mencapai pembuluh tapis untuk menghisap gula.

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