Blood proteomics of menopause map to brain aging and dementia risk

Abstract Menopause is a hallmark process in biological aging that has been implicated in later neurodegenerative risk, but the pathways underlying this connection remain unclear. Here we used blood proteomics data from several cohorts to identify biological changes associated with menopause and its links to brain aging. In n = 80 rigorously staged (STRAW+10) pre-, peri- and postmenopausal women (aged 43–58 years) with serum NULISAseq proteomics, we show that spontaneous menopause is characterized by dysregulation in inflammatory, synaptic, metabolic and Alzheimer’s disease biologic processes, which tracked more strongly with hormones than with age. Validation analyses in age-matched pre-/peri- and postmenopausal women ( n = 2,814) with plasma Olink proteomics replicated the observed proteomic shifts and revealed broader menopause-related upregulation of inflammatory and catabolic processes plus accelerated organ and cell aging, including brain aging. In four independent cohorts of older women (average age, 60.7–72.1 years; total n = 11,925), higher menopause proteomic scores associated consistently with cognitive aging and dementia risk. The molecular signatures of menopause may inform the selection of biomarkers or therapeutic targets for brain health in midlife women.

Authors

Publication Details

Journal
Nature Medicine
Published
2026-09-22
DOI
https://doi.org/10.1038/s41591-026-04648-4
Primary Topic
Menopause: Health Impacts and Treatments
Type
article
Field-Weighted Citation Impact
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article

Blood proteomics of menopause map to brain aging and dementia risk

Laura Pritschet, Tony Wyss‐Coray, Jennifer S. Rabin, Rowan Saloner et al.
Nature Medicine
Menopause: Health Impacts and Treatments
article

Blood proteomics of menopause map to brain aging and dementia risk

Laura Pritschet, Tony Wyss‐Coray, Jennifer S. Rabin, Rowan Saloner, Emily Goard Jacobs, Hamilton Se‐Hwee Oh, Kaitlin Blackstone Casaletto, Madeline Wood Alexander, Keenan A. Walker, Brendan Wood, Sterling C. Johnson, Marisa N. Denkinger, Veronica Augustina Bot, Albert Pham, Nina Miolane, Julia Borger, Caitlin Taylor, Michelle Caunca, Ria Warrier, Nicholas J. Ashton, Matthew S. Panizzon, Joel Kramer, Louisa Cornelis, Emily W. Paolillo, Allesandra Iadipaolo, Valentina Diaz, Ramiro Eduardo Rea Reyes
article en

Abstract

Abstract Menopause is a hallmark process in biological aging that has been implicated in later neurodegenerative risk, but the pathways underlying this connection remain unclear. Here we used blood proteomics data from several cohorts to identify biological changes associated with menopause and its links to brain aging. In n = 80 rigorously staged (STRAW+10) pre-, peri- and postmenopausal women (aged 43–58 years) with serum NULISAseq proteomics, we show that spontaneous menopause is characterized by dysregulation in inflammatory, synaptic, metabolic and Alzheimer’s disease biologic processes, which tracked more strongly with hormones than with age. Validation analyses in age-matched pre-/peri- and postmenopausal women ( n = 2,814) with plasma Olink proteomics replicated the observed proteomic shifts and revealed broader menopause-related upregulation of inflammatory and catabolic processes plus accelerated organ and cell aging, including brain aging. In four independent cohorts of older women (average age, 60.7–72.1 years; total n = 11,925), higher menopause proteomic scores associated consistently with cognitive aging and dementia risk. The molecular signatures of menopause may inform the selection of biomarkers or therapeutic targets for brain health in midlife women.

Nature Medicine
Good health and well-being
Openalex Percentile: Top 11%
Menopause: Health Impacts and Treatments
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