Disrupted neuronal expression of autism risk genes and white matter micro-organization after infant Zika infection

Congenital and early-life Zika virus (ZIKV) infection can result in neurologic deficits. Precise mechanisms of injury, especially in the more subtle presentation of postnatal infection, are not fully elucidated. Here, we defined the effects of ZIKV on the developing brain using single cell transcriptomics, histopathology and design-based stereology, diffusion MRI, and neurobehavioral assessments in infant rhesus macaques. ZIKV upregulated interferon-stimulated genes in activated microglia and cell death pathways in neurons and downregulated metabolism and differentiation genes in mature oligodendrocytes. Abnormal micro-organization of the corpus collosum and limbic white matter tracts was seen on diffusion weighted imaging. A curated gene set associated with autism spectrum disorder risk was negatively enriched in inhibitory and excitatory neurons from ZIKV-infected infants, with increased emotional reactivity already evident two weeks following infection. From single cells to organism-level behaviors, these results define the pathways and processes disrupted by early-life ZIKV infection.

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Publication Details

Journal
JCI Insight
Published
2026-09-24
DOI
https://doi.org/10.1172/jci.insight.203088
Primary Topic
Mosquito-borne diseases and control
Type
article
Field-Weighted Citation Impact
0.00
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article

Disrupted neuronal expression of autism risk genes and white matter micro-organization after infant Zika infection

Jessica Raper, Mark Burke, Chao‐Hsiung Hsu, Steven A. Sloan et al.
JCI Insight
Mosquito-borne diseases and control
article

Disrupted neuronal expression of autism risk genes and white matter micro-organization after infant Zika infection

Jessica Raper, Mark Burke, Chao‐Hsiung Hsu, Steven A. Sloan, Gregory K. Tharp, Mehul S. Suthar, Samia M. Abdallah, Steven E. Bosinger, Tsang‐Wei Tu, Ann Chahroudi, Kathryn M. Moore, Venkata-Viswanadh Edara, Divine Burgess, Ariana Hodjatzadeh, Yihana P. Melendez-Alejandro, Sienna Freeman, Mar M. Sanchez, Roza Vlasova, Shane Taylor, Ava K. Mascarenhas, Martin Styner, Maureen Sampson, Rebecca Richardson, Esther W. Ndungu, Michelle J. Lee, Nils Schoof
article en

Abstract

Congenital and early-life Zika virus (ZIKV) infection can result in neurologic deficits. Precise mechanisms of injury, especially in the more subtle presentation of postnatal infection, are not fully elucidated. Here, we defined the effects of ZIKV on the developing brain using single cell transcriptomics, histopathology and design-based stereology, diffusion MRI, and neurobehavioral assessments in infant rhesus macaques. ZIKV upregulated interferon-stimulated genes in activated microglia and cell death pathways in neurons and downregulated metabolism and differentiation genes in mature oligodendrocytes. Abnormal micro-organization of the corpus collosum and limbic white matter tracts was seen on diffusion weighted imaging. A curated gene set associated with autism spectrum disorder risk was negatively enriched in inhibitory and excitatory neurons from ZIKV-infected infants, with increased emotional reactivity already evident two weeks following infection. From single cells to organism-level behaviors, these results define the pathways and processes disrupted by early-life ZIKV infection.

JCI Insight
University of North Carolina at Chapel Hill (US), Howard University (US), Emory University (US)
Good health and well-being
Openalex Percentile: Top 9%
Mosquito-borne diseases and control
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