Why do animals have such different lifespans? - Joao Pedro de Magalhaes

5,585,531 views ・ 2017-04-04

TED-Ed


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For the microscopic lab worm, C. elegans
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life equates to just a few short weeks on Earth.
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Compare that with the tortoise, which can age to more than 100 years.
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Mice and rats reach the end of their lives after just four years,
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while for the bowhead whale, Earth's longest-lived mammal,
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death can come after 200.
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Like most living things,
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the vast majority of animals gradually degenerate after reaching sexual maturity
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in the process known as aging.
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But what does it really mean to age?
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The drivers behind this process are varied and complicated,
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but aging is ultimately caused by cell death and dysfunction.
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When we're young, we constantly regenerate cells
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in order to replace dead and dying ones.
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But as we age, this process slows down.
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In addition, older cells don't perform their functions as well as young ones.
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That makes our bodies go into a decline,
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which eventually results in disease and death.
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But if that's consistently true,
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why the huge variance in aging patterns and lifespan within the animal kingdom?
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The answer lies in several factors,
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including environment
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and body size.
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These can place powerful evolutionary pressures on animals to adapt,
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which in turn makes the aging process different across species.
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Consider the cold depths of the Atlantic and Arctic Seas,
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where Greenland sharks can live to over 400 years,
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and the Arctic clam known as the quahog can live up to 500.
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Perhaps the most impressive of these ocean-dwelling ancients
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is the Antarctic glass sponge,
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which can survive over 10,000 years in frigid waters.
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In cold environments like these, heartbeats and metabolic rates slow down.
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Researchers theorize that this also causes a slowing of the aging process.
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In this way, the environment shapes longevity.
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When it comes to size, it's often, but not always,
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the case that larger species have a longer lifespan than smaller ones.
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For instance, an elephant or whale will live much longer
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than a mouse, rat, or vole,
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which in turn have years on flies and worms.
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Some small animals, like worms and flies,
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are also limited by the mechanics of their cell division.
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They're mostly made up of cells that can't divide and be replaced when damaged,
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so their bodies expire more quickly.
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And size is a powerful evolutionary driver in animals.
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Smaller creatures are more prone to predators.
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A mouse, for instance, can hardly expect to survive more than a year in the wild.
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So, it has evolved to grow and reproduce more rapidly,
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like an evolutionary defense mechanism against its shorter lifespan.
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Larger animals, by contrast, are better at fending off predators,
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and so they have the luxury of time to grow to large sizes
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and reproduce multiple times during their lives.
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Exceptions to the size rule include bats, birds, moles, and turtles,
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but in each case, these animals have other adaptations
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that allow them to escape predators.
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But there are still cases where animals with similar defining features,
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like size and habitat,
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age at completely different rates.
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In these cases, genetic differences,
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like how each organism's cells respond to threats,
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often account for the discrepancies in longevity.
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So it's the combination of all these factors
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playing out to differing degrees in different animals
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that explains the variability we see in the animal kingdom.
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So what about us?
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Humans currently have an average life expectancy of 71 years,
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meaning that we're not even close to being the longest living inhabitants on Earth.
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But we are very good at increasing our life expectancy.
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In the early 1900s, humans only lived an average of 50 years.
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Since then, we've learned to adapt by managing many of the factors
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that cause deaths,
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like environmental exposure and nutrition.
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This, and other increases in life expectancy
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make us possibly the only species on Earth
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to take control over our natural fate.
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