Amyloid precursor protein and C99 are subunits in human microglial Hv1 channels that enhance current and inflammatory mediator release

R Ruiming Zhao (Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine) P Punyanuch Sophanpanichkul (Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine) J Jean Paul Chadarevian (Department of Neurobiology and Behavior, Institute for Memory Impairments and Neurological Disorders, Sue and Bill Gross Stem Cell Research Center, University of California Irvine) Y Yiwen Ding (Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine) H Hui Dai (Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine) M Maha Nayak (Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine) H Hayk Davtyan (Department of Neurobiology and Behavior, Institute for Memory Impairments and Neurological Disorders, Sue and Bill Gross Stem Cell Research Center, University of California Irvine) M Mathew Blurton-Jones S Steve A. N. Goldstein (Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine)

Abstract

In Alzheimer’s disease (AD), hyperactivated microglia produce inflammatory mediators that contribute to neuroinflammation and neuronal damage. Amyloid precursor protein (APP), a transmembrane protein expressed in many cell types, including neurons and microglia, plays a critical role in AD pathogenesis via its secretase-mediated processing to release the C-terminal 99-residue transmembrane fragment (C99) that is further cleaved to yield amyloid-β peptides. Voltage-gated proton channels (Hv1) have been implicated in microglial activation and release of inflammatory mediators, but the potential role of these channels in human microglia and AD pathogenesis remains unclear. Here, we demonstrate that human induced pluripotent stem cell–derived microglia (iMG) express native Hv1 channels with biophysical and pharmacological attributes determined by their coassembly with APP and that APP knockdown decreases Hv1 currents, suppressing cytokine and reactive oxygen species release. In HEK293T cells, APP is shown to increase current by favoring channel opening at more negative membrane potentials. C99 is sufficient to assemble with Hv1 and alters channel function even more significantly than APP. Coimmunoprecipitation, total internal reflection fluorescence microscopy, and altered pharmacology further demonstrate that C99 forms stable complexes with Hv1 in the plasma membrane. In addition, we find that two early-onset AD mutations in APP (E682K and D694N) that reside within C99 significantly increase voltage-dependent channel activity beyond that induced by wild type C99, rationalizing their enhanced mediation of neuroinflammation.

Article Details

Volume / Issue Vol. 122, Issue 43
Published October 28, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

R

Ruiming Zhao

Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine

P

Punyanuch Sophanpanichkul

Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine

J

Jean Paul Chadarevian

Department of Neurobiology and Behavior, Institute for Memory Impairments and Neurological Disorders, Sue and Bill Gross Stem Cell Research Center, University of California Irvine

Y

Yiwen Ding

Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine

H

Hui Dai

Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine

M

Maha Nayak

Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine

H

Hayk Davtyan

Department of Neurobiology and Behavior, Institute for Memory Impairments and Neurological Disorders, Sue and Bill Gross Stem Cell Research Center, University of California Irvine

M

Mathew Blurton-Jones

S

Steve A. N. Goldstein

Department of Pediatrics, Susan and Henry Samueli College of Health Sciences, University of California Irvine