Making real science accessible and interesting for all people.
Monday, December 31, 2012
Merry Christmas and Happy New Year
I'm taking a short break from the blog over the holidays but will be back in January!
Friday, December 21, 2012
Mistletoe: The Kissing Parasitic Plant with a Gross Background...
This is a post from two years ago but I thought it worthy of reposting. Mistletoe has such a fascinating background and considering the time of year...
For many years now, every time I see mistletoe hanging-up around Christmas time I find it sort of humorous. Most people think of mistletoe as the "kissing" plant. While I also think of it as the "kissing" plant, I also think of its complex parasitic life-cycle. Yes, mistletoe is a parasite, and is pretty common in western forests and deserts.
However, parasitism is only the beginning of the story. Even more interesting is how the mistletoe got on the tree in the first place. Mistletoe produces red or white berries which are possibly toxic to humans but extremely tasty and nutritious to birds of all types. Many types of birds will gorge themselves on the berries and as a consequence carry the seeds to new locations. In-fact, a southwestern bird known as the pheinopepla was found to eat around 1100 berries a day when berries were available. Eating all those berries means a lot of seeds being transporting to new plants that baby mistletoes can parasitize.
Seeds are transported in the birds digestive tract but also on their beaks. Mistletoe berries are covered with a very sticky substance causing seeds to stick to the birds beak, which the birds wipe off onto trees and shrubs where a new plant can grow. The sticky seeds also pass through the digestive tract of birds and when defecated on a plant can germinate and parasitize the new plant very quickly.
From all this you may think that mistletoe is a severe problem taking over and destroying our forests, but things to not always as they first appear. In many cases mistletoe actually benefits the forest. First of all the berries provide food for bird species that live in the area, increasing the number of birds and number of bird species an area can support. Secondly, some trees, such as the junipers, when parasitized actually produce more of their own seeds. This also increases the food available for birds and animals, thus supporting greater numbers of animals and greater diversity as well. Parastized trees also form deformed 'witches brooms' which many birds and animals prefer for nesting sites.
So the next time you see mistletoe hanging in the doorway, wow your "kisser" with this knowledge and they may never look at mistletoe in the same way. They may not want to kiss you after their new found knowledge either though... But this may be a good thing...
For many years now, every time I see mistletoe hanging-up around Christmas time I find it sort of humorous. Most people think of mistletoe as the "kissing" plant. While I also think of it as the "kissing" plant, I also think of its complex parasitic life-cycle. Yes, mistletoe is a parasite, and is pretty common in western forests and deserts.
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| A clump of mistletoe growing in the center of a juniper tree. |
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| Phainopepla, found to eat around 1100 mistletoe berries per day when berries were available. |
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| Desert tree severely parasitized by mistletoe. |
So the next time you see mistletoe hanging in the doorway, wow your "kisser" with this knowledge and they may never look at mistletoe in the same way. They may not want to kiss you after their new found knowledge either though... But this may be a good thing...
Monday, December 17, 2012
December Ephemeral Drainage Flow
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| A dry wash the morning after a flash flood came though. |
Of course, a lot of rain over a short period of time helps these washes to flow in the desert, but there are other factors involved also. Geology, or geomorphology, are probably the most important factors in determining flow. Geomorphology is simply a scientific term that describes how landforms came about and how they function. One of the functions of geology and geomorphology in the landscape is to determine how and where water flows. For example, shallow unbroken bedrock is going to prevent water from seeping down into the soil and therefore will result in greater amounts of runoff. Type of soil also matters in the amount of runoff produced. Rain seeps very slowly into clay soils so a lot of runoff can be generated. Sandy soils however can quickly absorb a lot of rain so not much will runoff. Number of rocks also makes a difference. Soils with fewer rocks have more runoff than soils with more rocks. Rocks on a soil surface slow the speed of runoff and with slow speeds of runoff the water has more time to be absorbed into the soil. Size of the dry wash also makes a difference with smaller washes flowing more frequently than larger washes. However, larger washes tend to run longer than small washes when they do flow. Larger washes simply need a lot more water to flow. Depending on the combination of these factors some washes will flow a few times annually while others will only flow a few times a decade.
All of these things factors also determine what lives where along a dry wash. Flow is normally very short in duration in a wash. This is simply because flowing water quickly is lost as it is absorbed into the sediments of the stream bed. Though flowing water is lost, the water is not entirely lost. Water is stored in these sediments for long periods of time after surface flow ends. Depending on the depth of this moisture and the depth of the sediments differing plants will occupy the area. Typically, deep sediments with relatively frequent flows will be occupied by blue palo verde and desert willow. Areas of fewer or shorter flows typically have yellow palo verde. Other plants such as acacia's, ironwood, wolfberry, and mesquites can be somewhere in-between.
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