ScienceIQ.com

What Gives Hair Its Color?

Put a single hair under a microscope, and you'll see granules of black, brown, yellow, or red pigment. What you are seeing are tiny particles of melanin, the same pigment that gives skin its color. Inside hair follicles, special cells called melanocytes produce melanin, which is deposited in the middle layer, or cortex, of the three-layered hair ...

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WhatGivesHairItsColor
Physics

Get the Point?

The discus and javelin first appeared in ancient game competitions in 708 B.C. Javelin events included both target throwing and distance throwing using a sling. By 1780, the javelin was adopted as an ... Continue reading

DiscusJavelin
Biology

Splitting Hairs

Pluck a single strand of hair from your head and you've lost what scientists call the hair shaft. The shaft is made of three layers, each inside the other. The outer casing is the cuticle. Under an ... Continue reading

SplittingHairs
Geology

A Continent In Deep Freeze

The continent of Antarctica is home to a uniquely beautiful and harsh environment that has changed little in the last 30 million years. The continent, approximately twice the size of Australia, lies ... Continue reading

AContinentInDeepFreeze
Biology

What Causes Wrinkles?

Elastin and collagen are proteins in the skin's underlying layers that give it firmness and elasticity. As we age, skin begins to lose its elastin fibers. The fibers start to tangle in disorganized ... Continue reading

WhatCausesWrinkles

Seamounts - Underwater Mountains

SeamountsUnderwaterMountainsSeamounts are undersea mountains that rise from the ocean floor, often with heights of 3,000 m or more. Compared to the surrounding ocean waters, seamounts have high biological productivity, and provide habitats for a variety of plant, animal, and microbial species. Seamounts are formed by volcanic processes, either as isolated peaks or as chains that may be thousands of miles long. In the Atlantic Ocean, the New England Seamounts form a chain of more than 30 peaks that begins near the coast of New England and extends 1,600 km to the southeast. Some of the peaks are more than 4,000 m above the deep-sea floor, similar to the heights of major peaks in the Alps. Bear Seamount is the closest of the New England Seamounts to the coast of the United States, and rises from a depth of 2,000 - 3,000 m to a summit that is 1,100 m below the sea surface.

Previous investigations have found numerous invertebrates, including cephalopods, crustaceans, and more than a hundred other species in 10 different phyla. These investigations also found more than 100 species of fishes, some of which are commercially important. Several species discovered at Bear Seamount were previously unknown to science. One of the challenges for animals living in the deep sea is a general scarcity of food. Most primary production in the ocean takes place in the upper 100 meters of the water column. Consequently, primary consumers (zooplankton) and higher predators are much more abundant in this near surface region than in deeper waters. Most deep-water fishes are not considered commercially important because their flesh lacks protein and has a watery consistency that makes them unattractive as food for humans. In the 1980’s, however, fishermen discovered large populations of a very different type of deep water fish living between depths of 700 - 1,200 m.

These fishes had firm, tasty flesh and high content of protein and lipids. Moreover, these fishes occurred in large aggregations around seamounts and plateaus near Australia and New Zealand. The biomass of fishes in these aggregations was typically more than ten times the biomass of other deep-water fishes in surrounding areas, making the aggregated fish much easier to harvest than fishes spread out over large areas of the deep sea. One of these fishes, the orange roughy, is now common in North American markets. How are large populations of muscular, active fish like the orange roughy able to obtain enough food from the deep-sea environment to meet their energy requirements?