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New research on body parts' sensitivity to environmental changes
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New Research On Body Parts' Sensitivity to Environmental Changes

ScienceDaily (Nov. 21, 2011) — Research by a team of Michigan State University scientists has shed new light on why some body parts are more sensitive to environmental change than others, work that could someday lead to better ways of treating a variety of diseases, including type 2 diabetes.

The research, led by assistant zoology professor Alexander Shingleton, is detailed in the recent issue of the PLoS Genetics.

In particular, Shingleton is studying the genetics of fruit flies and zeroing in on why some of the insects' body parts will grow to full size even when suffering from malnutrition, while others will not. He uses fruit flies because they use the same genes to control this process as humans.

"The developmental mechanisms by which these changes in body proportion are regulated are really unknown," Shingleton said.

Shingleton said that in humans, a person's brain will grow to near full size despite malnutrition or other environmental, or nongenetic, problems.

If scientists can figure out why some organs or body parts are either overly sensitive or insensitive to environmental factors, then it's possible that therapies could be developed to deal with any number of maladies.

"If we know how we can control sensitivity to environmental issues such as malnutrition, we can, in principle, manipulate genes that are regulating that sensitivity," Shingleton said. "Genes can be activated so they can actually restore sensitivity."

Type 2 diabetes is a good example of the body's insensitivity to nongenetic issues. The most common form of diabetes, type 2, occurs when the body becomes insensitive to insulin, which is released in response to blood sugar levels. The body needs insulin to be able to use glucose for energy.

"In diabetes, that response is suppressed," Shingleton said. "We get desensitization. We know people become insulin resistant, but we're not quite sure why."

What Shingleton and colleagues discovered is that even when malnourished, the genitals of a male fruit fly continue to grow to normal size.

"The same developmental mechanism that a fly uses to make its genitals insensitive to changes in nutrition may be the same that we as humans use to modulate the responsiveness of individual body parts to changes in nutrition," he said. "Our job is to try to understand why some body parts are responsive to changes in nutrition and others aren't."

Using the fruit fly for this type of research "gives us enormous information about how we as humans work and how we respond to our environment," Shingleton said. "This provides information on biomedical issues that arise from things like malnutrition or insulin resistance."

Shingleton's research is funded by the National Science Foundation and MSU's Bio/computational and Evolution in Action Consortium, or BEACON.

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The above story is reprinted from materials provided by Michigan State University.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.


Journal Reference:

  1. Hui Yuan Tang, Martha S. B. Smith-Caldas, Michael V. Driscoll, Samy Salhadar, Alexander W. Shingleton. FOXO Regulates Organ-Specific Phenotypic Plasticity In Drosophila. PLoS Genetics, 2011; 7 (11): e1002373 DOI: 10.1371/journal.pgen.1002373
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Disclaimer: This article is not intended to provide medical advice, diagnosis or treatment. Views expressed here do not necessarily reflect those of ScienceDaily or its staff.

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Quicklinks:
- 201204120418095454- Think Zinc: Molecular Sensor Could Reveal Zinc's Role In Diseases- read more- New Evidence That Fat Cells Are Not Just Dormant Storage Depots for Calories- read more- Rogue Cells Could Cause Spread Of Breast Cancer- read more- Zinc and the Zebrafish: Fluorescent Fish Could Hold Key to Understanding Diabetes and Other Diseases- read more- Morphing Robots and Shape-Shifting Sculptures- Jurassic Squid Ink Same as Today's Squid Ink- 'Empathy' Neurons in Monkey Brains?- Cloak of Invisibility Using Plasmonics- Earth's Water Cycle Intensifying- Mercury in Arctic Springs from Hidden Source- Zooming in On Bacterial Weapons in 3-D- How Birds Learn Songs: Motor Control Insights- Green-Glowing Fish Provides New Insights Into Health Impacts of Pollution- Think Zinc: Molecular Sensor Could Reveal Zinc's Role In Diseases- read more- New Evidence That Fat Cells Are Not Just Dormant Storage Depots for Calories- read more- Rogue Cells Could Cause Spread Of Breast Cancer- read more- Zinc and the Zebrafish: Fluorescent Fish Could Hold Key to Understanding Diabetes and Other Diseases- read more- Morphing Robots and Shape-Shifting Sculptures- Jurassic Squid Ink Same as Today's Squid Ink- 'Empathy' Neurons in Monkey Brains?- Cloak of Invisibility Using Plasmonics- Earth's Water Cycle Intensifying- Mercury in Arctic Springs from Hidden Source- Zooming in On Bacterial Weapons in 3-D- How Birds Learn Songs: Motor Control Insights- read more- Think Zinc: Molecular Sensor Could Reveal Zinc's Role In Diseases- read more- New Evidence That Fat Cells Are Not Just Dormant Storage Depots for Calories- read more- Rogue Cells Could Cause Spread Of Breast Cancer- read more- Zinc and the Zebrafish: Fluorescent Fish Could Hold Key to Understanding Diabetes and Other Diseases- read more- Morphing Robots and Shape-Shifting Sculptures- Jurassic Squid Ink Same as Today's Squid Ink- 'Empathy' Neurons in Monkey Brains?- Cloak of Invisibility Using Plasmonics- Earth's Water Cycle Intensifying- Mercury in Arctic Springs from Hidden Source- Zooming in On Bacterial Weapons in 3-D- How Birds Learn Songs: Motor Control Insights