PsyPost
  • Mental Health
  • Social Psychology
  • Cognitive Science
  • Neuroscience
  • About
No Result
View All Result
Join
My Account
PsyPost
No Result
View All Result
Home Exclusive Cognitive Science

Estrogen-producing neurons influence aggression in both sexes

by University of California at San Francisco
January 24, 2015
Reading Time: 3 mins read
Photo credit: DARPA

Photo credit: DARPA

Share on TwitterShare on Facebook

A miniscule cluster of estrogen-producing nerve cells in the mouse brain exerts highly specific effects on aggressive behavior in both males and females, according to new research by UC San Francisco scientists.

The cells in question, known as aromatase-expressing (aromatase+) cells, represent less than five one-hundredths of a percent of the neurons in the mouse brain, but they play crucial roles in sexual differentiation during early development and in regulating sexual and social behavior in adulthood.

Though estrogen is generally thought of as a female sex hormone, during the 1970s it was discovered that the male sex hormone testosterone can be converted to estrogen in the brain by aromatase, an enzyme also found in many other mouse and human tissues.

In the male mouse, estrogen, presumably synthesized by aromatase+ neurons in the brain, is known to be involved in diverse social behaviors, including the ultrasonic “singing” that males produce when courting females, and in mating, aggression, and the marking of territory.

Aromatase+ neurons are also present, in smaller numbers, in females. But because females produce high levels of circulating estrogen and very little testosterone, it has been unclear whether aromatase+ cells in the female brain are purely vestigial or serve some other function.

To more precisely investigate the workings of aromatase+ cells, a team in the UCSF laboratory of senior author Nirao Shah, MD, PhD, used genetic methods to selectively deplete these neurons in a single brain region known as the posterodorsal medial amygdala, or MeApd, in adult mice. This structure, in which aromatase+ cells make up 40 percent of the neurons, forms part of a circuit that is vital to normal social and reproductive behavior.

“The part of the olfactory bulb that receives pheromonal information–which is what mice use to identify other mice and to respond appropriately–projects directly to the amygdala, so we know that it’s important for social behavior,” said first author Elizabeth K. Unger, a graduate student in the Shah lab who led the research.

After the research group eliminated aromatase+ neurons from the MeApd in male mice, the mice exhibited mostly normal social behaviors: they continued to mark their territory, and they recognized, courted, and successfully mated with females. If presented with an unfamiliar male, however, the mice acted quite differently from their normal counterparts.

Google News Preferences Add PsyPost to your preferred sources

When male mice encounter a strange male in their territory they typically rattle their tail threateningly and attack the intruder shortly thereafter. But male mice lacking aromatase+ neurons were slower and less aggressive in their response to other males: their tail-rattling was significantly diminished, and it took much longer for them to mount an attack. This lag in mounting attacks on intruders was correlated with the number of aromatase+ cells that had been eliminated by the researchers’ genetic manipulation.

Once these mice did launch an attack, however, the aggressiveness of their fighting behavior resembled that of normal males.

In females, the consequences of depleting aromatase+ cells were also sharply restricted. These females exhibited normal responses to males, including in their mating behaviors. But if they had given birth, females lacking aromatase+ cells did not display normal levels of maternal aggression.

Female mice with nursing pups will generally attack unfamiliar male mice, because males sometimes kill rival males’ pups. In a strikingly similar pattern to that seen in males lacking aromatase+ cells, however, nursing females in which these cells were depleted were much slower than normal mice to mount an attack.

Again, once attacks were initiated they were indistinguishable from those launched by normal female mice with nursing pups.

“In theory, these estrogen-producing neurons could have controlled any part of social behavior, or all social behaviors, but we found they control only a very small component of aggression,” said Unger. “And considering females do not need these cells to produce estrogen, it was quite surprising to find that these cells play a similar role in both males and females.”

For Shah, professor of anatomy, the results are a compelling example of “modularity” in the neural control of complex social behavior. “Though social behaviors–marking of territory, recognizing potential mates, successfully mating, fighting–seem quite ‘seamless’ when we observe them, this study shows that different neural systems control quite distinct, specific components of these behaviors.”

TweetSendScanShareSendPin1ShareShareShareShareShare

Follow PsyPost

The latest research, however you prefer to read it.

Daily newsletter

One email a day. The newest research, nothing else.

Google News

Get PsyPost stories in your Google News feed.

Add PsyPost to Google News
RSS feed

Use your favorite reader.

Copy RSS URL
Social media
Support independent science journalism

Ad-free reading, full archives, and weekly deep dives for members.

Become a member

Trending

  • How personality and social context shape adolescent loneliness
  • Weightlifting offers large antidepressant effects for young women with anxiety, regardless of intensity
  • Brain scans reveal how recurrent depression leaves a lasting mark on the amygdala
  • A clever psychological test reveals the subtle detail that makes us want to work harder
  • Creatine improves muscle mass and cognitive function in older adults even without exercise

Science of Money

  • Why highly adaptable business clients aren’t always the most satisfied
  • The four ways underdog startups survive corporate giants
  • How AI-generated plain English changes investor interest in mutual funds
  • What 18 years of brokerage data reveals about selling losing stocks
  • When edgy brands meet manipulative consumers: The backfire effect of dark personalities

Recent

  • Adolescent narcissism brings brief popularity but not likeability among peers, study finds
  • Unintentional mind wandering disrupts attention in ADHD through two different mechanisms
  • How virtual reality is changing brain-training technology
  • A 20-minute workout protects memory after sleep loss just as well as a 90-minute nap
  • How personality and social context shape adolescent loneliness
  • Federal science funding cuts push young U.S. researchers to consider moving abroad
  • Autistic individuals might be somewhat better at reading emotions of other autistic people
  • Therapeutic gardening improves mental health for adults with chronic conditions
  • Weightlifting offers large antidepressant effects for young women with anxiety, regardless of intensity
  • Different video game genres alter brain activity and enhance cognition in unique ways

PsyPost is a psychology and neuroscience news website dedicated to reporting the latest research on human behavior, cognition, and society. (READ MORE...)

  • Mental Health
  • Neuroimaging
  • Personality Psychology
  • Social Psychology
  • Artificial Intelligence
  • Cognitive Science
  • Psychopharmacology
  • Contact us
  • Disclaimer
  • Privacy policy
  • Terms and conditions

(c) PsyPost Media Inc

Welcome Back!

Login to your account below

Forgotten Password?

Retrieve your password

Please enter your username or email address to reset your password.

Log In

Add New Playlist

Subscribe
  • My Account
  • Cognitive Science Research
  • Mental Health Research
  • Social Psychology Research
  • Drug Research
  • Relationship Research
  • About PsyPost
  • Contact
  • Privacy Policy

(c) PsyPost Media Inc