Showing posts with label trichome. Show all posts
Showing posts with label trichome. Show all posts

Wednesday, August 17, 2016

Sorry, I Don’t Drink

Biology concepts – water conservation, kidney function, metabolic water, adaptation, water uptake


“Koala” in aborigine means “no drink.” The
moist eucalyptus leaves are poisonous 
to most animals, but koalas have a special 
bacteria that can break down the toxic
eucalyptus oil.
We all know we need water to survive (see Gimme Some Dihydrogen Monoxide), so why is it that koala bears have decided they don’t need to drink?

Koalas eat eucalyptus leaves, as well as mistletoe and a few other leaves. The leaves contain a good amount of water, and the koalas can survive on just this source of moisture. It also helps that they sleep about 18 hours each day, have a very slow metabolism, and feed about 80% of the time they are awake - it is apparent that they have evolved into teenagers. This doesn’t mean that koalas can’t or don’t drink, they just don’t require drinking to get their daily requirement of water unless a drought dries up the leaves.

However, there exist species that never drink. The kangaroo rat and the spinifex hopping mouse take temperance to the extreme. These rodents can live out their entire life (5-7 years) and never use the water fountain. They have chosen their lifestyles wisely, considering that the hopping mouse lives in the Australian outback and the kangaroo rat lives in Death Valley! We will use the kangaroo rat as our exemplar for this exception.

Unlike the koala that gets its water from its diet, the kangaroo rat eats seeds- not a great source of water. Therefore, it must have other strategies for survival. Foremost, it has developed ways to prevent water loss. Its kidneys super-distill its urine so it is up to 17 times more concentrated than its blood; the best we can do is 3-4 times concentration.


Please meet the nephron. The blood vessels form a
glomerulus, which is surrounded by the Bowman’s capsule.
Notice how the blood vessels surround the Loop of
Henle to take the retained water and salts back into
the blood.
The kidney is made up of thousands of filtering units called nephrons (Greek nephros = kidney). Each nephron has a Bowman’s capsule that filters the blood of waste,and removes some of the water and salt. The filtrate then flows through a series of tubules that adjust the concentration of the salts and water according to what the body needs to retain or dispose of at that particular moment. The portion of the kidney that removes water from the urine back to the blood are called the Loop of Henle, and these loops are much longer in the kangaroo rat’s kidney as compared to those in human kidneys. Therefore, more water is returned to the blood and the urine wastes are more concentrated.


The kangaroo rat doesn’t look thirsty, 
even though it doesn’t look like his 
burrow has seen water for years. 
I would imagine that despite the hot 
weather and the fur coat, kangaroo 
rats don’t sweat; they can’t afford the 
water loss.





The kangaroo rat doesn't stop there. He burrows deep and keeps his burrow small. This helps to trap and moisture that escapes via his exhalations. If you breathe on a mirror, it will show condensation; you invest a lot of water in keeping your lungs moist and functional. The rat can reabsorb some of the moisture present in its burrow via its skin, respiratory tract, and his seeds. 

The dry seeds that the kangaroo rat finds are stored in a pouch in its mouth and taken back to the burrow. Here they are stored for several days in a corner, during which time they also absorb moisture from the burrow’s air. This is just another way the rat recycles some of its own moisture. 

Finally, the kangaroo rat makes the most of the water it produces. Yes, it generates water – but so do you. Think of the production of ATP (aerobic respiration) as the opposite of photosynthesis. In the building of carbohydrates (during photosynthesis). In photosynthesis, water is split and the hydrogen is added to the growing carbohydrate. But in the electron transport chain for oxidative phosphorylation (making ATP) oxygen accepts an electron and then reacts with hydrogen to form water. Water made this way is called metabolic water. In humans, metabolic processes like generation of ATP produce about 2.5 liters of water each day. In the kangaroo rat, this process is more efficient and the water produced is kept in house.


As the electrons from the breakdown of glucose travel down the
electron transport chain in the mitochondrial membrane, they
help to move protons (H+) out. As they leak back in through the
ATPase, they help make ATP. The electron needs some place to go,
and an oxygen atom is a good place to go. This makes 
the oxygen reactive; it picks up hydrogens to form water.
Add all these measures up and the kangaroo rat changes its habitat from Death Valley to Life Valley. Unfortunately,  not many other organisms can join it there.

Just because it doesn't drink or eat watery foods doesn’t necessarily mean that an organism doesn’t take in water. Amphibians absorb environmental (air or surface) water through their skin. Frogs are a group of amphibians that can be used as good examples. Frog skin is smooth, without hair or feathers, and is permeable to water. A ventral patch (sometimes called a seat patch) of skin is located on the underside of the frog between its two hind legs. This skin patch has a higher concentration of blood vessels just beneath the surface, ready to suck available water into the bloodstream.

To get to the blood vessels below the skin, the water passes through a series of aquaporin (aqua = water, pore = opening) protein channels in the skin cells. These proteins also control water entry into bacteria; they are evolutionarily very old and therefore must be important. The frog splays its legs and lays down on a surface that is moist from dew or rain, and the water flows through the ventral patch aquaporins and into the bloodstream. Interestingly, water doesn’t flow the other direction, although some water does evaporate through amphibian skin. That is why frogs must live close to water. Toad skin is much less likely to lose water, so they can live farther from water.

Some plants also garner water in unconventional ways. Non-vascular plants (mosses, lichens, liverworts, hornworts) as well as many epiphytes (bromeliads, orchids, some ferns and mosses, mistletoe) are plants without roots. However, a lack of roots or vessels doesn’t stop these plants, they have evolved marvelous adaptations to procure the water they must have.

Non vascular plants are just that – plants without vascular tissues (xylem and phloem). Plant vascular tissues are tubes inside the stem that transport water (phloem) and sugars (xylem) throughout the plant. Non-vascular plants don’t have roots and vessels to absorb and transport water and minerals, although mosses and ferns may have rhizoids that serve that purpose. In general, non-vascular plants grow close to water so that they can use all their structures to absorb water by capillary action as well as by absorbing water directly from the air.

Epiphytes are even better at pulling water from the air, although they still use pooled rainwater as well. This group of plants may have dense root systems, but some are not anchored in the ground to give support to the plant. Instead, many of them use other plants for support. Orchids are particularly good at storing water in their thick stems and absorbing water through their exposed roots. Velamen (latin for veil or cover) layer root cells of orchids are adapted to prevent water loss while a few cells in this layer and the layer below are hollow and allow water to pass through.

Bromeliad epiphytes are better at absorbing pooled water and humidity through their leaves than in taking water in through their roots. In tropical regions, they have two adaptations to aid this process. One, many bromeliads have near vertical leaves shaped to trap water at their bases (together called a tank) that may hold over a liter of water. Second, they have specialized cells at the base of the leaves to transfer this water (and minerals) to the interior of the plant. The most economically important of this Bromelioideae subfamily is the pineapple, which is a terrestrial bromeliad. It can absorb water through its roots in the ground, but if you are growing one, try to keep the tank from drying out as well.


The top picture is looking down on a bromeliad trichome. 
The middle picture is looking from the side. See how they 
curl up to allow water in. When they fill with water, 
they fold down (lowest picture), to prevent water loss 
from the cells underneath.
Bromeliads living in areas with less rain, such as Spanish moss, have a different adaptation. Their leaves store the water that is absorbed through specialized structures called trichomes on the surface of each leaf. Trichomes have shields made of non-living cells, much like our outer layers of skin. Other cells form a disc and are mostly a void, capable of rapidly taking in water. When these cells swell, their tips curl downward (remember turgor pressure from Plants That Don’t Sleep Well).

Curling forms a small cavity under the disc that draws water in to the protected foot cells under the disc by capillary action. These cells also have aquaporin proteins that draw the water into the interior tissues. When there is less water around, the disc cells flatten out and cover the stalk cells, preventing water loss. The whole structure acts like an anti-umbrella!

So organisms can get water from air, food, or metabolism - but we can go them one better. There is an animal that doesn’t eat or drink during its entire adult life, can you imagine? O.K. – so its life is only five minutes long, but it doesn’t eat or drink during that five minutes.

Adult female sand burrowing mayflies (Dolania Americana) emerge from their water-borne larval form and seek two things, a male for mating, and a place to deposit her eggs. Since all larvae are evolved to mature at once, males are around in large numbers; problem 1 solved. And since they live near water, place to lay eggs are also plentiful; problem 2 solved. Within five minutes, her work is done and she dies – not a glamorous life.


The American sand burrowing mayfly lives a year or more
as a larvae in the water, but when it metamorphoses into
the sexually mature form and leaves the water, 5 minutes
is all she gets. There may be species with shorter sexual
reproductive life span, but it would be hard to spot, and
harder to study.
Different species of mayfly live varying amounts of time – some live as adults for up to 2 days - oldtimers! But even if the mayfly wanted to invest some of their precious time in eating and drinking, they couldn’t do it. Adult mayfly mouthparts are vestigial (having become nonfunctional through evolution) and their digestive systems disappear as they mature. So in this biological case, a lack of form follows a lack of function.

There is another crucial element of life that interacts with water, and ocean going organisms are intimately familiar with it. Salt is just as important for life as is water, but why? We will begin looking into the functions of salts and how they interact with water next time.



Banta MR (2003). Merriam's kangaroo rats (Dipodomys merriami) voluntarily select temperatures that conserve energy rather than water. Physiological and biochemical zoology : PBZ, 76 (4), 522-32 PMID: 13130431


King RF, Cooke C, Carroll S, & O'Hara J (2008). Estimating changes in hydration status from changes in body mass: considerations regarding metabolic water and glycogen storage. Journal of sports sciences, 26 (12), 1361-3 PMID: 18828029


For more information, classroom activities, and laboratories about water uptake, renal function, trichome, or mayflies:

Animals that don’t drink –


Kidneys –

Aquaporins –

Trichomes –

Mayflies -

Wednesday, May 1, 2013

Venomous Plants – A Hairy Situation

Biology concepts – venom, toxin, poison, nettle, urticating hairs, trichomes, defense behavior

The cobalt blue tarantula is a beautiful old world
tarantula, but not very cleverly named. They are
popular as pets, even though they are fast,
aggressive and have a potent venom. Fortunately,
they don’t have urticating hairs.
A tarantula, a jellyfish, and an ongaonga tree walk into a bar – O.K., maybe not the best start. But these three organisms do have something in common, something that has been recognized since the time of their classification and naming. Follow along.

Tarantula spiders are a popular example of venomous arthropods, arachnids to be exact. “Tarantula” is a vague term as it is used in the general population. The name comes from Taranto, Italy and came to mean any unknown, hairy, long-legged spider. In scientific taxonomy, tarantulas belong to the family Theraphodsidae, a group containing at least a dozen subfamilies and more than 900 species.

Many tarantulas have impressive fangs that deliver potent toxins to their victims. The fringed ornamental tarantula (Poecilotheria ornate) has produced a coma in a human; however, no known tarantula possesses venom that is acutely lethal to people.

But biting isn’t the only way tarantulas can defend themselves. Besides giving you the heebie-jeebies, two subfamilies of tarantula spiders have defenses called urticating hairs. These hairs are easily lost from their hairy backs or legs when the spider is touched by a predator. These small hairs can lodge in the eyes or skin of predators and cause significant physical irritation, enough to ward off a predator.

There are at least four types of urticating hairs, each differing in size and in the type of predator against which they are most effective. The old world tarantulas have type II urticating hairs that are dislodged by touch, but some tarantulas from the Americas can go one step further. They can fire their urticating hairs from a distance (types I, III or IV).

Urticating hairs often cause urticaria (hives), but
sometimes the red bumps will coelesce and form a
rash. And if you allergic, as seen here, the rash will
become big, ugly, and painful. You can see blister
development at the bottom. Explain to me why he is
affected on his belly?!
Species like the chilean rose and the mexican red-knee tarantulas have urticating hairs that can be fired by kicking their back legs against the back of their abdomen. When threatened, the tarantulas turn and rise up on their legs – ready! They point their abdomen at the threat – aim! And then they rub their legs against their abdomen and release a cloud of hairs toward the target – fire! This leaves a bald patch on their back and a very annoyed predator.

Most urticating hairs are mildly irritating to humans, unless you hold the spider up to your face. This is what happened in 2013 to a three year old boy at his birthday party. He held a rose tarantula up to his face to get a good look, and got two eyes worth of uritcating hairs! He cried for days, as they are so small as to become completely buried in the cornea and cannot be removed. He has made several subsequent trips to the hospital for care.

Other tarantulas have more damaging urticating hairs.  The Goliath Birdeater has larger hairs that can cause very bad rashes, and feel like fiberglass shards embedded in the skin. Some people will become allergic to the hairs, and the rash and reaction will be even worse (see the picture above).
So what has tarantula hair got to do with jellyfish or the ongaonga tree? Urtica is the Latin word for “nettle,” and the ongaonga tree is also known as the tree nettle or Urtica ferox. And the Greek word for nettle is “cnida,” as in cnidarians – like the jellyfish and coral we talked about two weeks ago. All three of these types of organisms use stinging cells for defense or offense.
Cnidarians use nematocysts to envenomate their prey, shooting toxin filled harpoons at the target. Tarantulas (and some caterpillars) use urticating hairs, not to poison but to irritate their predators. And there are some plants, the nettles, which use urticating hairs as venom delivery systems – the best of both worlds.
The nettles (genus Urtica, approximately 80 species) have hollow uricating hairs that can deliver toxins when they are broken off and embedded in an unfortunate victim. The hairs are actually modified trichomes, epithelial structures found in many plants that are merely raised areas on the plant surface.
Trichomes evolved many variations, those termed “hairs” can be thick or thin, long or short, fuzzy or smooth. Some may be used for water absorption or evaporation, while others will physically impede the movement of insects along the plant, or act as sensors. Venus flytraps (Dionaea muscipula) have three different kinds of trichomes; two secrete digestive juices and one is the sensitive trip wire for closing the trap.
These are the trichomes (stingers) of the ongaonga
nettle. Most nettles have smaller hairs, but this makes
for a more ominous picture. Remember that it isn’t
just their sharp points, they contain venom too.

Typical toxins included in nettle tricomes are formic acid, like in many ant species, and neurotransmitters like serotonin, and histamine. The pain or itch goes away in a few hours. They raise red welts that itch, called hives. In scientific terms, all hive-producing reactions are called urticaria. Get the connection? Most nettle trichome envenomations, like those from Urtica dioica (common nettle) are irritating, but little else.

However, the ongaonga tree (Uritca ferox) is the exception. There has been at least one death associated with just brushing against it. The ongaonga has unusually large spines; the lightest touch brings pain for more than five days.  Its neurotoxins also include an acetylcholine (Ach)-like chemical, yet another neurotransmitter.

The late symptoms can include breathing problems, blindness and paralysis. A 21 year old student developed a paralysis after a brush with the ongaonga. The neurotoxin caused her motor nerves to malfunction, firing too slowly and without pattern. It took weeks for her to recover.

But the news isn’t all bad. Nettle toxins may be used to in medicine, including diabetes, infection and even liver damage. A 2013 study in India treated rats with common nettle oil before performing a partial liver removal. The oils helped promote liver regeneration and decreased cell death after surgery. They also reduced the amount of oxidative damage in the surviving cells. So if you plan on destroying your liver, go run through a nettle patch first. However, I couldn’t find any studies using ongaonga oils – it is just too toxic. So be sure of your nettle patch species prior to your liver-protecting frolic.
A strange picture to see here, but follow along. You can
have part of your liver removed if it is damaged and live
just fine. A partial removal is called a hepatectomy. Some
parts can even regenerate after you have them removed.
Hepatectomy is important, as it makes it possible to have
living liver donors – you give someone part of your liver,
and you grow it back. This is where the nettle medicine
could be useful.

Our king of venomous plants comes from a different genus of the same family of plants as the nettles. You would think a plant that could kill you by touch would have a tough name, but it turns out to be just another insult added to the injury. You have tell your best buddies that you are laid up for weeks by a plant; and when asked, you have to tell them it was the “gympie gympie!” I can hear the laughter now.

The gympie gympie (Dendrocnidae moroides) lives in Australia, the land of painful deaths. The Australian Geographic website says that being envenomated by the gympie gympie is like, “being burnt with hot acid and electrocuted at the same time.” It has killed people, horses, and dogs.
Minor stings can last for hours to days with increased heart rate and sweating. The gympie’s trichomes seem to be silica based, like glass. You can heat them with a flame until they glow red, but they will still hold their shape. Add being stabbed with glass shards to the description of the gympie's sting.

Severe encounters can bring pain for months, with symptoms waning and then brought back by hot or cold air, water, or rubbing. Some people have shot themselves to relieve the pain, while others have had to be strapped to the bed.

There isn’t much you can do to treat the pain, but you might be able to shorten the length of your torture. The best first aid is to immediately apply hair removal wax and yank out the trichomes. You go for a hike and end up with silky, smooth skin and a pain that won’t stop – oh, wait, that could be just be describing the waxing.
The gympie gympie has huge leaves, like it is trying to ruin
your day. You can’t even see the hairs here, they are too
small. But you know it if you touch it. Did this guy lose a bet? 
Just being this close is a very bad idea.

Usually the pain comes from rubbing against the leaves, stem, or twigs. But the gympie wants to reach out and touch you, even if you don’t reach out and touch it. It sheds its urticating hairs all the time, so if you hang around a tree long enough, you will get a nosebleed and start to sneeze painfully. And you can’t wax the inside of your nose ….. I hope.

Fortunately, few deaths have been associated with the gympie gympie. It grows in the rainforests of northeast Australia where the population is very low, about 5-10 people per 2.5 sq. mile. The aborigines live here, and they actually eat the berries of the gympie gympie. Since all its trichomes point one direction, the natives know how to move along the stems and leaves in the right direction to harvest dinner. Apparently the berries aren’t poisonous.

D. moroides toxins include those said to act as neurotransmitters Ach, serotonin,  and histamine, but their chemical structures are different. They also include moroidin, a short peptide toxin that was first isolated from the leaves and stalks of the gympie.

No, this isn’t a picture of some electrical spark experiment
gone wrong. The green spines are the mitotic spindle and
the red blobs are the chromatids being pulled apart during
mitosis. More mitoses, more cell divisions. More divisions,
more cells. Too many more cells = cancer. It would be nice
to stop the spindles in that case.
Moroidin is a mitotic inhibitor; it interrupts the polymerization of tubulin during the formation of the mitotic spindle. If no spindle forms, then there is no alignment or segregation of chromatids during mitosis, so no cell division. Moroidin is supposed to be the factor that makes the sting pain last a long time, but not enough research has been done in this area. No one can even tell me specific chemicals the gympie possesses or how it causes pain! How can we make use of it in medicine if we don’t know how it works? I would think that a mitosis inhibitor might work well against cancer – let’s get to work people!

School is winding down, so why don't we start our summer posts. Each week will be a separate question in biology, from misconceptions to things that make you wonder, to weirdness galore. Next week - how good are different species at going without oxygen, and who can hold their breath the longest?

Oguz, S., Kanter, M., Erboga, M., Toydemir, T., Sayhan, M., & Onur, H. (2013). Effects of Urtica dioica on oxidative stress, proliferation and apoptosis after partial hepatectomy in rats Toxicology and Industrial Health DOI: 10.1177/0748233713480211

Hammond-Tooke, G., Taylor, P., Punchihewa, S., & Beasley, M. (2007). Urtica ferox neuropathy Muscle & Nerve, 35 (6), 804-807 DOI: 10.1002/mus.20730


For more information, see:

Tarantula urticating hairs –

Nettles –

Gympie gympie –