{"id":23238,"date":"2023-10-11T13:01:46","date_gmt":"2023-10-11T10:01:46","guid":{"rendered":"https:\/\/dinoshop.ro\/?p=23238"},"modified":"2023-10-16T13:14:57","modified_gmt":"2023-10-16T10:14:57","slug":"the-planetary-ocean-and-deep-sea-gigantism","status":"publish","type":"post","link":"https:\/\/dinoshop.ro\/en\/2023\/10\/11\/oceanul-planetar-si-gigantismul-marin-de-mare-adancime\/","title":{"rendered":"The global ocean and deep-sea gigantism"},"content":{"rendered":"<h4>The global ocean is the largest body of water on Earth and comprises five oceans: the Pacific, Atlantic, Indian, Arctic and Southern oceans. Although it covers more than 70% of the Earth\u2019s surface, over 80% remains unexplored, and only 5% of the ocean floor has been mapped. <em>Challenger Deep<\/em> (Mariana Trench, Pacific Ocean) is the deepest point on the Earth\u2019s surface, at 10,902 m below sea level. Throughout time, the deep oceans have been inhabited by unusual and often very large organisms, a natural phenomenon known as <em>abyssal gigantism<\/em> or <em>deep-sea gigantism<\/em>.<\/h4>\n<figure id=\"attachment_23315\" aria-describedby=\"caption-attachment-23315\" style=\"width: 912px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23315 size-large\" title=\"Japanese spider crab\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/87c9c7282f158b49b489b2e4de276696-912x1024.jpg\" alt=\"Japanese spider crab\" width=\"912\" height=\"1024\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/87c9c7282f158b49b489b2e4de276696-912x1024.jpg 912w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/87c9c7282f158b49b489b2e4de276696-267x300.jpg 267w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/87c9c7282f158b49b489b2e4de276696-768x863.jpg 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/87c9c7282f158b49b489b2e4de276696-555x623.jpg 555w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/87c9c7282f158b49b489b2e4de276696.jpg 1112w\" sizes=\"auto, (max-width: 912px) 100vw, 912px\" \/><figcaption id=\"caption-attachment-23315\" class=\"wp-caption-text\">Figure 1 \u2013 The Japanese spider crab (<em>Macrocheira kaempferi<\/em>) lives at a depth of 300 m and has a leg span of 3.8 m. Photograph published in Popular Science magazine, June 1920. Source: <a href=\"https:\/\/en.wikipedia.org\/wiki\/Japanese_spider_crab#\/media\/File:Japanese_spider_crab.jpg\" target=\"_blank\" rel=\"noopener\">Wikipedia<\/a><\/figcaption><\/figure>\n<h3><b>What is meant by \u201cdeep sea\u201d?<\/b><\/h3>\n<p><b> <\/b>The deep sea is generally considered to begin at depths greater than 200 m below sea level. Three depth zones are distinguished (Figure 2): the bathyal zone (below 200 m), the abyssal zone (below 4,000 m) and the hadal zone (below 6,000 m).<\/p>\n<figure id=\"attachment_23241\" aria-describedby=\"caption-attachment-23241\" style=\"width: 1600px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23241 size-full\" title=\"Depth zones of the marine environment\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Etajele-mediului-marin-acvatic.png\" alt=\"Depth zones of the marine environment\" width=\"1600\" height=\"1264\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Etajele-mediului-marin-acvatic.png 1600w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Etajele-mediului-marin-acvatic-300x237.png 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Etajele-mediului-marin-acvatic-1024x809.png 1024w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Etajele-mediului-marin-acvatic-768x607.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Etajele-mediului-marin-acvatic-1536x1213.png 1536w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Etajele-mediului-marin-acvatic-555x438.png 555w\" sizes=\"auto, (max-width: 1600px) 100vw, 1600px\" \/><figcaption id=\"caption-attachment-23241\" class=\"wp-caption-text\">Figure 2 \u2013 Depth zones of the marine environment. Source: <a href=\"https:\/\/www.britannica.com\/science\/marine-ecosystem#\/media\/1\/365256\/31\" target=\"_blank\" rel=\"noopener\">Encyclopedia Britannica<\/a><\/figcaption><\/figure>\n<h3><b>Exploring the deep sea<\/b><\/h3>\n<p>Deep-sea exploration presents several challenges, including high pressure, low temperatures and the absence of light.<\/p>\n<p>According to <em>NOAA (United States National Oceanic and Atmospheric Administration)<\/em>, pressure increases by approximately one atmosphere (1 atm) for every 10 m of descent. At a depth of approximately 6,000 m, hydrostatic pressure therefore approaches 600 atm, comparable to the weight of an elephant resting on a Romanian 50-bani coin. Submersibles are exposed to immense pressures, and even a small structural defect can cause an immediate, destructive implosion. Their design process therefore begins with computer simulations of component behaviour under high-pressure conditions. Physical prototypes are subsequently tested in the laboratory before the final submersible is deployed in the ocean.<\/p>\n<p>Sunlight progressively attenuates as it penetrates water, eventually giving way to complete darkness. Three zones are distinguished according to light availability in the marine environment (Figure 3): <b>the photic, or sunlit, zone <\/b>(the upper 200 m), which supports photosynthetic vegetation; <strong>the<\/strong><b>oligophotic, or twilight, zone <\/b>(below 200 m), with photosynthetic bacteria; and <b>the aphotic zone <\/b>(below 600 m),<b> which receives no light. <\/b>To compensate for the absence of light, submersibles require powerful lighting systems and alternative means of sensing their surroundings, such as sonar and laser scanners.<\/p>\n<figure id=\"attachment_23242\" aria-describedby=\"caption-attachment-23242\" style=\"width: 964px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23242 size-full\" title=\"Light penetration in the ocean\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Zone-in-functie-de-lumina.png\" alt=\"Light penetration in the ocean\" width=\"964\" height=\"378\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Zone-in-functie-de-lumina.png 964w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Zone-in-functie-de-lumina-300x118.png 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Zone-in-functie-de-lumina-768x301.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Zone-in-functie-de-lumina-555x218.png 555w\" sizes=\"auto, (max-width: 964px) 100vw, 964px\" \/><figcaption id=\"caption-attachment-23242\" class=\"wp-caption-text\">Figure 3 \u2013 The euphotic, dysphotic and aphotic zones, defined by the depth of light penetration in the ocean. Source: <a href=\"https:\/\/oceanservice.noaa.gov\/facts\/light_travel.html\" target=\"_blank\" rel=\"noopener\">NOAA \u2013 National Oceanic and Atmospheric Administration<\/a><\/figcaption><\/figure>\n<p>At a depth of 200 m, the average water temperature is 4 \u00b0C. In deeper waters, temperatures rarely exceed 3 \u00b0C and may fall to \u22121.8 \u00b0C. Submersible structures may contain components made from different materials, such as plastic and metal, which contract at different rates at low temperatures. Their joints, particularly those involving moving components, therefore present an additional design challenge.<\/p>\n<h3><b>What does the ocean floor look like?<\/b><\/h3>\n<p>The ocean floor is the part of the Earth\u2019s crust beneath ocean water. Its varied topography formed mainly through the spreading and subduction of tectonic plates, with tides, ocean currents and waves playing a smaller role. Tectonic plates fit together like a spherical jigsaw above the Earth\u2019s molten mantle. Mantle convection moves the plates very slowly. Where plates converge, one may slide beneath another, causing earthquakes and forming volcanoes or trenches. Where they diverge, magma rises between them, forming rifts, submarine volcanoes and <strong>hydrothermal vents<\/strong> (\u201cunderwater geysers\u201d that release water heated by the Earth\u2019s magma, together with dissolved minerals).<\/p>\n<figure id=\"attachment_23243\" aria-describedby=\"caption-attachment-23243\" style=\"width: 3000px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23243 size-full\" title=\"Ocean-floor topography\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Treptele-reliefului-marin.png\" alt=\"Ocean-floor topography\" width=\"3000\" height=\"1687\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Treptele-reliefului-marin.png 3000w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Treptele-reliefului-marin-300x169.png 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Treptele-reliefului-marin-1024x576.png 1024w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Treptele-reliefului-marin-768x432.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Treptele-reliefului-marin-1536x864.png 1536w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Treptele-reliefului-marin-2048x1152.png 2048w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Treptele-reliefului-marin-555x312.png 555w\" sizes=\"auto, (max-width: 3000px) 100vw, 3000px\" \/><figcaption id=\"caption-attachment-23243\" class=\"wp-caption-text\">Figure 4 \u2013 Ocean-floor topography. Source: <a href=\"https:\/\/www.noaa.gov\/education\/resource-collections\/ocean-coasts\/ocean-floor-features\" target=\"_blank\" rel=\"noopener\">NOAA Office of Education<\/a><\/figcaption><\/figure>\n<p>Ocean-floor topography comprises several principal zones (Figure 4):<\/p>\n<ol>\n<li>The continental shelf is a gently sloping extension of the coastal region. It forms the submerged margin of the continent and reaches depths of up to 200 m;<\/li>\n<li>The continental slope is a steep region marking the transition from continental to oceanic crust;<\/li>\n<li>The pelagic region (the plateau or abyssal plains) slopes gently and covers 70% of the ocean floor, forming what may be considered the \u201ctrue ocean floor\u201d. Despite the term \u201cplains\u201d, it is not entirely flat: submarine ridges, rifts and volcanoes occur within it;<\/li>\n<li>The abyssal region, or ocean trenches, comprises deep depressions reaching 6\u201311 km in depth, including the Mariana Trench. These features occupy approximately 1% of the global ocean\u2019s surface area.<\/li>\n<\/ol>\n<h3><b>How have deep-sea animals adapted to survive?<\/b><\/h3>\n<p>The deep oceans are extreme environments characterised by high pressure, the absence of sunlight, low temperatures, limited food and lower oxygen concentrations. Such conditions would be lethal to fish adapted to surface waters. Deep-sea fish have evolved adaptations that enable survival under these conditions. The application <em>Deep Sea ID<\/em>, released by the Natural History Museum in London, provides a photographic gallery of diverse deep-sea species.<\/p>\n<p>Fish generally possess the ability to float, termed <b>buoyancy<\/b>. The downward and upward forces acting on a fish are approximately balanced, resulting in neutral buoyancy. Because fish are denser than water, they maintain buoyancy using the swim bladder, a sac-like organ with a hydrostatic function.<span class=\"Apple-converted-space\">\u00a0 <\/span>The fish\u2019s specific weight\u2014the ratio of weight to volume\u2014is therefore adjusted to its swimming depth, making it effectively \u201cweightless\u201d and allowing it to move through the water column with minimal effort. Deep-sea fish generally lack a gas-filled swim bladder, or it has limited function, and have evolved other adaptations, including reduced tissue density.<\/p>\n<p>At a depth of 1,000 m in the bathyal zone, <b>pressure<\/b> is approximately 100 atm. Nevertheless, animals swim freely in prolonged darkness. Pressure is less of an obstacle because deep-sea animals consist largely of water and are therefore not crushed by it. Life exists even at the deepest point in the ocean, <i>Challenger Deep <\/i>\u2013 where life is present. To date, <i>Pseudoliparis swirei<\/i> (\u201c<i>Mariana snailfish<\/i>\u201d) is the fish recorded at the greatest depth, capable of surviving 8,000 m below sea level, where pressure is approximately 800 times greater than at the surface.<\/p>\n<p>Below 200 m, in the mesopelagic zone, <strong>light<\/strong> is insufficient to support photosynthetic organisms such as plants, algae and phytoplankton. The mesopelagic food web depends on organic matter sinking from surface waters, including faecal pellets, plankton and plant or animal debris. This \u201cmarine snow\u201d is the principal energy source for these organisms.<\/p>\n<p>On the <strong>ocean floor<\/strong>, in addition to marine snow, bacterial colonies survive around hydrothermal vents through <em>chemosynthesis<\/em>, a process that enables them to obtain energy from minerals released from the Earth\u2019s crust (Figure 5). These bacteria form the basis of distinctive food chains and are consumed by larger organisms such as crabs and molluscs. Some researchers propose that the earliest forms of life on Earth originated around hydrothermal vents, where life can exist without sunlight and at great depths. For further information about the earliest animals on Earth, see <a href=\"https:\/\/dinoshop.ro\/en\/2019\/08\/28\/when-did-the-first-animals-appear-and-how-did-they-evolve\/\" target=\"_blank\" rel=\"noopener\">The first animals: when did they appear and how did they evolve?<\/a> and <a href=\"https:\/\/dinoshop.ro\/en\/2020\/02\/06\/the-oldest-animal-identified\/\" target=\"_blank\" rel=\"noopener\">Dickinsonia costata: the oldest animal identified to date<\/a> on DinoShop.ro.<\/p>\n<figure id=\"attachment_23330\" aria-describedby=\"caption-attachment-23330\" style=\"width: 980px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23330 size-large\" title=\"Hydrothermal vent\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/MARUM_Schwarzer_Raucher-1024x768.jpg\" alt=\"Hydrothermal vent\" width=\"980\" height=\"735\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/MARUM_Schwarzer_Raucher-1024x768.jpg 1024w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/MARUM_Schwarzer_Raucher-300x225.jpg 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/MARUM_Schwarzer_Raucher-768x576.jpg 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/MARUM_Schwarzer_Raucher-1536x1152.jpg 1536w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/MARUM_Schwarzer_Raucher-555x416.jpg 555w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/MARUM_Schwarzer_Raucher.jpg 2048w\" sizes=\"auto, (max-width: 980px) 100vw, 980px\" \/><figcaption id=\"caption-attachment-23330\" class=\"wp-caption-text\">Figure 5 \u2013 <em>candelabra<\/em>, a \u201cblack smoker\u201d hydrothermal vent at a depth of 3,300 m in the Atlantic Ocean. Source: University of Bremen, <a href=\"https:\/\/en.wikipedia.org\/wiki\/Hydrothermal_vent#\/media\/File:MARUM_Schwarzer_Raucher.jpg\" target=\"_blank\" rel=\"noopener\">Wikipedia<\/a><\/figcaption><\/figure>\n<p>Many deep-sea fish live in near-total darkness and have evolved adaptations to locate prey, avoid predators, communicate and find mates. More than 50% of deep-sea fish have developed <strong>bioluminescence<\/strong>, enabling them to produce light, as fireflies do. Bioluminescent organisms generate light efficiently through the oxidation of a substance called <i>luciferin<\/i>, using only 1% of their energy for this purpose. A well-known example is the lanternfish, which accounts for 65% of the total biomass of deep-sea fish.<\/p>\n<h3><b>Deep-sea gigantism<\/b><\/h3>\n<p>With increasing depth, animals may become larger and more unusual in appearance. Some attain sizes exceeding those of related species in surface waters. For example, <i>isopods<\/i> in surface waters rarely exceed a few inches in length, whereas deep-sea giant isopods can reach half a metre in length and 1.7 kg in mass (Figure 6). This phenomenon is termed <b>deep-sea gigantism <\/b>or <b>abyssal gigantism.<\/b><\/p>\n<figure id=\"attachment_23244\" aria-describedby=\"caption-attachment-23244\" style=\"width: 964px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23244 size-full\" title=\"Giant isopod\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Isopod-gigant.png\" alt=\"Giant isopod\" width=\"964\" height=\"620\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Isopod-gigant.png 964w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Isopod-gigant-300x193.png 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Isopod-gigant-768x494.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Isopod-gigant-555x357.png 555w\" sizes=\"auto, (max-width: 964px) 100vw, 964px\" \/><figcaption id=\"caption-attachment-23244\" class=\"wp-caption-text\">Figure 6 \u2013 Giant isopod. Source: <a href=\"https:\/\/www.flickr.com\/photos\/noaaphotolib\/5084202288\/\" target=\"_blank\" rel=\"noopener\">NOAA Photo Library<\/a><\/figcaption><\/figure>\n<h3><b>Why do some deep-sea animals become giants?<\/b><\/h3>\n<figure id=\"attachment_23245\" aria-describedby=\"caption-attachment-23245\" style=\"width: 1024px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23245 size-full\" title=\"Giant amphipod Alicella gigantea\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Amfipod-gigant.png\" alt=\"Giant amphipod Alicella gigantea\" width=\"1024\" height=\"768\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Amfipod-gigant.png 1024w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Amfipod-gigant-300x225.png 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Amfipod-gigant-768x576.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Amfipod-gigant-555x416.png 555w\" sizes=\"auto, (max-width: 1024px) 100vw, 1024px\" \/><figcaption id=\"caption-attachment-23245\" class=\"wp-caption-text\">Figure 7 \u2013 Giant amphipod Alicella gigantea. Author: AlconBlue. Source: <a href=\"https:\/\/www.deviantart.com\/alconblue\/art\/Giant-Amphipod-372449897\" target=\"_blank\" rel=\"noopener\">DeviantArt<\/a><\/figcaption><\/figure>\n<p>This natural phenomenon is not necessarily intuitive, since a larger body might be expected to impede survival. The reasons why some abyssal organisms attain exceptional sizes remain uncertain. Marine biologists have proposed several hypotheses to explain this phenomenon, which is difficult to study.<\/p>\n<figure id=\"attachment_23247\" aria-describedby=\"caption-attachment-23247\" style=\"width: 800px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23247 size-full\" title=\"Magnapinna squid with elongated arms and tentacles\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Bigfin-squid.jpeg\" alt=\"Magnapinna squid with elongated arms and tentacles\" width=\"800\" height=\"450\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Bigfin-squid.jpeg 800w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Bigfin-squid-300x169.jpeg 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Bigfin-squid-768x432.jpeg 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Bigfin-squid-555x312.jpeg 555w\" sizes=\"auto, (max-width: 800px) 100vw, 800px\" \/><figcaption id=\"caption-attachment-23247\" class=\"wp-caption-text\">Figure 8 \u2013 Magnapinna squid with elongated arms and tentacles. Source: <a href=\"https:\/\/oceanexplorer.noaa.gov\/okeanos\/explorations\/ex2107\/features\/bigfin-squid\/media\/ex1202-bigfin-squid-hires.jpg\" target=\"_blank\" rel=\"noopener\">NOAA Ocean Exploration<\/a><\/figcaption><\/figure>\n<p><b>Kleiber\u2019s law\u00a0<\/b><i>states that larger animals tend to be more metabolically efficient<\/i>. A whale with a body mass hundreds of times greater than that of a small fish therefore has a proportionally slower metabolism. As body size increases, the surface-area-to-volume ratio decreases, so a smaller fraction of metabolic energy is lost as heat. A lower metabolic rate is an important advantage for deep-sea animals, which must conserve energy because food is limited in both availability and quality.<\/p>\n<figure id=\"attachment_23248\" aria-describedby=\"caption-attachment-23248\" style=\"width: 1500px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23248 size-full\" title=\"Greenland shark\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Rechin-groenlanda.png\" alt=\"Greenland shark\" width=\"1500\" height=\"1001\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Rechin-groenlanda.png 1500w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Rechin-groenlanda-300x200.png 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Rechin-groenlanda-1024x683.png 1024w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Rechin-groenlanda-768x513.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Rechin-groenlanda-750x500.png 750w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Rechin-groenlanda-555x370.png 555w\" sizes=\"auto, (max-width: 1500px) 100vw, 1500px\" \/><figcaption id=\"caption-attachment-23248\" class=\"wp-caption-text\">Figure 9 \u2013 Greenland shark. Author: Hemming1952,\u00a0 <a href=\"https:\/\/en.wikipedia.org\/wiki\/Greenland_shark#\/media\/File:Greenland_shark_profile.jpg\" target=\"_blank\" rel=\"noopener\">Wikipedia<\/a><\/figcaption><\/figure>\n<p>For example, in the hadal zone, animals known as <i>amphipods<\/i> (<i>Alicella gigantea<\/i> \u2013 Figure 7) have evolved enzymes that enable them to metabolise almost anything reaching the ocean floor, including wood. These crustaceans can consume detritus equivalent to twice their body mass each day. Another example is a cephalopod reaching up to 8 m in length, the \u201c<i>long-armed squid<\/i>\u201d of the genus <i>Magnapinna<\/i> (Figure 8). It resembles a string puppet, with long, slender arms extending towards deep-water zooplankton while the rest of the body remains higher in the water, concealed by darkness. Although deep-sea gigantism mainly affects invertebrates, it may also help explain the morphology of some vertebrates. <i>The Greenland shark<\/i> belongs to a group of deep-sea sharks known as \u201c<i>sleeper sharks<\/i>\u201d (Figure 9). They reach up to 7 m in length and can store substantial food reserves in their stomachs, allowing them to travel long distances without feeding frequently. As their name suggests, sleeper sharks are among the slowest sharks in the ocean, moving at approximately 0.3 m\/s. Rather than hunting actively, they rely on a strong sense of smell to detect and consume particles of marine snow (see <a href=\"https:\/\/oceanservice.noaa.gov\/facts\/marinesnow.html\" target=\"_blank\" rel=\"noopener\">here<\/a> for a closer view of marine snow). Their reduced metabolic rate is also associated with exceptional longevity, reaching 300\u2013400 years. Another example is <i>the giant sea sponge<\/i>, a sessile animal that expends no energy on locomotion (Figure 10). It feeds by filtering marine snow and can reach the size of a van.<\/p>\n<figure id=\"attachment_23249\" aria-describedby=\"caption-attachment-23249\" style=\"width: 800px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23249 size-full\" title=\"Giant sea sponge\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Burete-de-mare-gigant.png\" alt=\"Giant sea sponge\" width=\"800\" height=\"1067\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Burete-de-mare-gigant.png 800w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Burete-de-mare-gigant-225x300.png 225w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Burete-de-mare-gigant-768x1024.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Burete-de-mare-gigant-555x740.png 555w\" sizes=\"auto, (max-width: 800px) 100vw, 800px\" \/><figcaption id=\"caption-attachment-23249\" class=\"wp-caption-text\">Figure 10 \u2013 Giant sea sponge. Author: J. R. Pawlik. Source: <a href=\"https:\/\/en.wikipedia.org\/wiki\/Joseph_Richard_Pawlik#\/media\/File:PawlikUW2.jpg\" target=\"_blank\" rel=\"noopener\">Wikipedia<\/a><\/figcaption><\/figure>\n<p><b>Bergmann\u2019s rule<\/b><i>\u00a0states that marine animals in colder environments tend to be larger.<\/i> Lower habitat temperatures are associated with larger cells, attributed to higher oxygen concentrations in polar waters, and longer lifespans resulting from reduced metabolic rates. This helps explain why gigantism is more prevalent at the poles, where sea spiders, sponges and marine worms can grow much larger than their relatives in warmer regions. Zoologists have found <i>giant sea spiders<\/i> of the species <i>Decolopoda australis<\/i>, measuring up to 60 cm across (Figure 11), whereas comparable sea spiders elsewhere may not exceed 1 mm. Slower metabolism reduces the activity rate of polar marine animals, while polar waters provide abundant oxygen. Together, these conditions increase the ratio of oxygen supply to demand, allowing the animals to sustain large bodies without exceeding their oxygen resources. Global warming threatens this delicate balance. Polar regions are particularly sensitive to climate change. As water warms, oxygen concentrations decline, potentially preventing these animals from sustaining their metabolic processes. They may also face an influx of invasive organisms against which they have not evolved defences, previously excluded by the constraints of the polar front.<\/p>\n<figure id=\"attachment_23250\" aria-describedby=\"caption-attachment-23250\" style=\"width: 1200px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23250 size-full\" title=\"Giant sea spider\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Paianjan-de-mare-gigant.png\" alt=\"Giant sea spider\" width=\"1200\" height=\"900\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Paianjan-de-mare-gigant.png 1200w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Paianjan-de-mare-gigant-300x225.png 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Paianjan-de-mare-gigant-1024x768.png 1024w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Paianjan-de-mare-gigant-768x576.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Paianjan-de-mare-gigant-555x416.png 555w\" sizes=\"auto, (max-width: 1200px) 100vw, 1200px\" \/><figcaption id=\"caption-attachment-23250\" class=\"wp-caption-text\">Figure 11 \u2013 Giant sea spider Decolopoda australis. Source: <a href=\"https:\/\/www.mbari.org\/animal\/giant-sea-spider\/\" target=\"_blank\" rel=\"noopener\">Monterey Bay Aquarium Research Institute<\/a><\/figcaption><\/figure>\n<p>In 1964, J. Bristol Foster compared 116 island-dwelling species with their mainland counterparts. He observed that some island animals had evolved larger bodies, a phenomenon known as <b>insular gigantism<\/b>, while others had evolved smaller bodies, termed <b>insular dwarfism<\/b>. He proposed that small animals become larger when predation pressure is low, whereas large animals become smaller when food resources are limited.<\/p>\n<p>In 1973, biologist Leigh Van Valen formulated a principle based on Foster\u2019s study, known as the <strong>i<\/strong><b>sland rule<\/b>. It states that <i>members of a species living and evolving on an island tend towards larger or smaller body sizes according to the resources available<\/i>. For example, <i>Gal\u00e1pagos tortoises<\/i> have lived in isolation on islands for millions of years and are the largest tortoises on Earth.<\/p>\n<p>In 2006, biologist Craig McClain found that the deep sea is functionally similar to an island: resources are limited, predators are fewer, and organisms are relatively isolated from the rest of the ocean. McClain observed that some <i>gastropod molluscs <\/i>found at depth (genus <i>Dentimargo<\/i>) exhibit dwarfism comparable to insular dwarfism. Some animals may have become exceptionally large simply because no predators were capable of consuming organisms of that size. For example, the sperm whale is the only predator of <i>the giant squid. <\/i>The giant squid (<i>Architeuthis dux<\/i>) is the largest invertebrate on Earth, reaching up to 13 m in length (Figure 12). For further information about insular gigantism and dwarfism, see this <a href=\"https:\/\/dinoshop.ro\/en\/2023\/04\/05\/transylvanosaurus-platycephalus-the-most-recently-discovered-dwarf-dinosaur-from-the-hateg-basin-in-romania\/\" target=\"_blank\" rel=\"noopener\">article about Ha\u021beg Island during the Cretaceous<\/a> on DinoShop.ro.<\/p>\n<figure id=\"attachment_23251\" aria-describedby=\"caption-attachment-23251\" style=\"width: 1600px\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-23251 size-full\" title=\"Giant squid\" src=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Calamar-gigant.png\" alt=\"Giant squid\" width=\"1600\" height=\"1083\" srcset=\"https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Calamar-gigant.png 1600w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Calamar-gigant-300x203.png 300w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Calamar-gigant-1024x693.png 1024w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Calamar-gigant-768x520.png 768w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Calamar-gigant-1536x1040.png 1536w, https:\/\/dinoshop.ro\/wp-content\/uploads\/2023\/10\/Calamar-gigant-555x376.png 555w\" sizes=\"auto, (max-width: 1600px) 100vw, 1600px\" \/><figcaption id=\"caption-attachment-23251\" class=\"wp-caption-text\">Figure 12 \u2013 Giant squid of the genus Architeuthis. Source: <a href=\"https:\/\/www.britannica.com\/animal\/squid#\/media\/1\/561782\/229297\" target=\"_blank\" rel=\"noopener\">Encyclopedia Britannica<\/a><\/figcaption><\/figure>\n<h3><b>Conclusions<\/b><\/h3>\n<p>Deep-sea gigantism illustrates the role of natural selection in survival and evolution, and how challenging environmental conditions\u2014darkness, low temperatures, high pressure and limited food\u2014favour effective adaptations. Regardless of size, evolution favours the body size best suited to survival.<\/p>\n<p>Climate change affects ocean animals more than any other population on Earth. As global warming progresses, giant species may be among the first to disappear.<\/p>\n<h3><b>References<\/b><\/h3>\n<ul>\n<li><a href=\"https:\/\/oceanexplorer.noaa.gov\/facts\/deep-ocean.html\" target=\"_blank\" rel=\"noopener\">https:\/\/oceanexplorer.noaa.gov\/facts\/deep-ocean.html<\/a><\/li>\n<li><a href=\"https:\/\/oceanexplorer.noaa.gov\/facts\/deep-ocean.html\" target=\"_blank\" rel=\"noopener\">https:\/\/oceanexplorer.noaa.gov\/facts\/deep-ocean.html<\/a><\/li>\n<li><a href=\"https:\/\/oceanexplorer.noaa.gov\/facts\/deep-habitat.html#\" target=\"_blank\" rel=\"noopener\">https:\/\/oceanexplorer.noaa.gov\/facts\/deep-habitat.html#<\/a><\/li>\n<li><a href=\"https:\/\/oceanservice.noaa.gov\/facts\/marinesnow.html\" target=\"_blank\" rel=\"noopener\">https:\/\/oceanservice.noaa.gov\/facts\/marinesnow.html<\/a><\/li>\n<li><a href=\"https:\/\/www.noaa.gov\/education\/resource-collections\/ocean-coasts\/ocean-floor-features\" target=\"_blank\" rel=\"noopener\">https:\/\/www.noaa.gov\/education\/resource-collections\/ocean-coasts\/ocean-floor-features<\/a><\/li>\n<li><a href=\"https:\/\/www.naturalworldfacts.com\/deep-sea-gigantism\" target=\"_blank\" rel=\"noopener\">https:\/\/www.naturalworldfacts.com\/deep-sea-gigantism<\/a><\/li>\n<li><a href=\"https:\/\/ocean.si.edu\/ecosystems\/deep-sea\/deep-sea\" target=\"_blank\" rel=\"noopener\">https:\/\/ocean.si.edu\/ecosystems\/deep-sea\/deep-sea<\/a><\/li>\n<\/ul>\n<p><span class=\"Apple-converted-space\">\u00a0<\/span><\/p>\n<p><span class=\"Apple-converted-space\">\u00a0<\/span><\/p>","protected":false},"excerpt":{"rendered":"<p>Oceanul planetar reprezint\u0103 cea mai mare \u00eentindere de ap\u0103 de pe glob \u0219i cuprinde cinci oceane: Pacific, Atlantic, Indian, Arctic \u0219i Antarctic. De\u0219i acoper\u0103 mai mult de 70% din suprafa\u021ba P\u0103m\u00e2ntului, peste 80% este neexplorat, oamenii reu\u0219ind s\u0103 cartografieze doar 5% din fundul oceanelor. Challenger Deep (Groapa Marianelor, Oceanul Pacific) este cel mai ad\u00e2nc punct [&hellip;]<\/p>\n","protected":false},"author":152,"featured_media":23264,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[9,640],"tags":[649,647,643,646,648,645,167,642,650,651,652,644,653,641],"class_list":["post-23238","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-articole-si-stiri","category-fenomene-naturale-si-istoria-naturii","tag-animale-din-adancuri","tag-calamar-gigantic","tag-challenger-deep","tag-colossal-squid","tag-fundul-oceanului","tag-giant-squid","tag-gigantic","tag-gigantism","tag-gigantism-abisal","tag-gigantism-marin-de-mare-adancime","tag-gigantismul-marin","tag-groapa-marianelor","tag-guri-hidrotermale","tag-ocean"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.6 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ 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