Primate gut microbiota induce evolutionarily salient changes in mouse neurodevelopment

A Alex R. DeCasien (Computational and Evolutionary Neurogenomics Unit, Laboratory of Neurogenetics, Intramural Research Program, National Institute on Aging, Bethesda, MD, USA.) J Jacob E. Aronoff (Center for Evolution and Medicine, Arizona State University) E Elizabeth K. Mallott (Department of Anthropology, Northwestern University) S Sahana Kuthyar (Department of Anthropology, Northwestern University) S Sriram Chitta (Department of Comparative Medicine, The University of Texas MD Anderson Cancer Center) B Brian T. Layden (Department of Medicine, University of Illinois Chicago, Chicago, IL, USA.) M Maria L. Savo Sardaro (Department of Anthropology, Northwestern University) S Stanton Gray (Department of Comparative Medicine, The University of Texas MD Anderson Cancer Center) L Lawrence E. Williams (Department of Comparative Medicine, The University of Texas MD Anderson Cancer Center) E Emma R. Liechty (Center for Comparative Medicine, Northwestern University) H Hyo M. Lee (Section on Developmental Neurogenomics, National Institute of Mental Health) W Won Lee (Department of Psychology, University of Texas at Austin) J James P. Curley (Department of Psychology, University of Texas at Austin) C Christopher W. Kuzawa (Department of Human Evolutionary Biology, Harvard University) K Katherine R. Amato (Department of Anthropology, Northwestern University)

Abstract

Multiple primate species, including humans, evolved brains that are exceptionally large relative to their body sizes. These large brains coevolved with metabolic adaptations that enhance cerebral energy supply, including increased circulating glucose levels. While the gut microbiota (GM) is known to influence host metabolism, its potential role in primate brain evolution remains unclear. To investigate this, we inoculated germ-free mice with the GMs of primate species selected to separate the effects of brain size (encephalization) from phylogenetic relatedness: humans (large-brained, Catarrhini), macaques (smaller-brained, Catarrhini), and squirrel monkeys (large-brained, Platyrrhini). We first show that differences in brain gene expression between mice inoculated with human versus macaque GMs resemble those observed between actual human and macaque brains. Comparing the effects of the different primate GMs on mouse brain gene expression further revealed that despite greater evolutionary distance, the GMs from the two larger-brained species (humans and squirrel monkeys) similarly upregulated genes associated with energy production. Notably, human GMs specifically increased the expression of genes involved in oxidative phosphorylation, and these gene expression changes correlated with increased abundances of GM metabolic pathways related to glucose metabolism and gluconeogenesis. Human GMs also downregulated evolutionarily conserved genes implicated in neurodevelopmental disorders such as autism. Although these are findings based on a small sample of primate species and must be interpreted as preliminary, they suggest that species differences in GM composition can influence brain metabolism and raise the possibility that the GM could have played a supporting role in primate encephalization.

Article Details

Volume / Issue Vol. 123, Issue 2
Published January 13, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (15)

A

Alex R. DeCasien

Computational and Evolutionary Neurogenomics Unit, Laboratory of Neurogenetics, Intramural Research Program, National Institute on Aging, Bethesda, MD, USA.

J

Jacob E. Aronoff

Center for Evolution and Medicine, Arizona State University

E

Elizabeth K. Mallott

Department of Anthropology, Northwestern University

S

Sahana Kuthyar

Department of Anthropology, Northwestern University

S

Sriram Chitta

Department of Comparative Medicine, The University of Texas MD Anderson Cancer Center

B

Brian T. Layden

Department of Medicine, University of Illinois Chicago, Chicago, IL, USA.

M

Maria L. Savo Sardaro

Department of Anthropology, Northwestern University

S

Stanton Gray

Department of Comparative Medicine, The University of Texas MD Anderson Cancer Center

L

Lawrence E. Williams

Department of Comparative Medicine, The University of Texas MD Anderson Cancer Center

E

Emma R. Liechty

Center for Comparative Medicine, Northwestern University

H

Hyo M. Lee

Section on Developmental Neurogenomics, National Institute of Mental Health

W

Won Lee

Department of Psychology, University of Texas at Austin

J

James P. Curley

Department of Psychology, University of Texas at Austin

C

Christopher W. Kuzawa

Department of Human Evolutionary Biology, Harvard University

K

Katherine R. Amato

Department of Anthropology, Northwestern University