Phagocytes as plaque catalysts: Human macrophages generate seeding-competent Aβ42 fibrils with cross-seeding activity

K Katerina Konstantoulea (VIB Center for Neuroscience, VIB) M Meine Ramakers (VIB Center for Neuroscience, VIB) S Sarah C. Borrie (VIB Center for Neuroscience, VIB) D Dries T’Syen (VIB Center for Neuroscience, VIB) D Daan Moechars (VIB Center for Neuroscience, VIB) M Malgorzata A. Sliwinska (VIB Center for Neuroscience, VIB) B Brajabandhu Pradhan (VIB Center for Neuroscience, VIB) G Giulia Albertini (VIB Center for Neuroscience, VIB) N Nóra Baligács (VIB Center for Neuroscience, VIB) G Grigoria Tsaka B Bert Houben (VIB Center for Neuroscience, VIB) M Mark Fiers (VIB Center for Neuroscience, VIB) R Rodrigo Gallardo (VIB Center for Neuroscience, VIB) M Maarten Dewilde (Laboratory for Therapeutic and Diagnostic Antibodies, Department of Pharmaceutical and Pharmacological Sciences, University of Leuven (KU Leuven)) D Dietmar Rudolf Thal M Michael Willem (Biomedical Center, Biochemistry, Faculty of Medicine, Ludwig-Maximilians-Universität München) J Jonas J. Neher (Biomedical Center, Biochemistry, Faculty of Medicine, Ludwig-Maximilians-Universität München) B Bart De Strooper (VIB Center for Neuroscience, VIB) F Frederic Rousseau J Joost Schymkowitz

Abstract

The prevailing view frames microglia and macrophages as guardians against amyloid beta (Aβ) accumulation in Alzheimer’s disease (AD). Here, we overturn this paradigm by demonstrating that human phagocytic cells, including differentiated THP-1 macrophages and hESC-derived microglia, are not merely passive responders but active producers of extracellular, seeding-competent Aβ42 fibrils, the amyloid species most strongly linked to parenchymal plaque formation and neurodegeneration. These cell-generated aggregates differ structurally and functionally from synthetic fibrils, displaying enhanced seeding and tau cross-seeding activity in biosensor models. Notably, Aβ42 fibril formation in this system requires active cellular processes and is exacerbated by loss of Triggering Receptor Expressed on Myeloid Cells 2 (TREM2), a major AD risk gene. Transcriptomic profiling reveals an early inflammatory response resembling microglial states observed in human AD models. Together, these findings support emerging evidence from in vivo studies that macrophages and microglia can influence amyloid seeding and introduce a human-relevant in vitro platform to explore how Aβ aggregation intersects with innate immune function and genetic risk. Our results reinforce the concept that microglia may play a dual role in AD, acting both as responders and inadvertent facilitators of amyloid assembly, with implications for early therapeutic intervention.

Article Details

Volume / Issue Vol. 123, Issue 10
Published March 10, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (20)

K

Katerina Konstantoulea

VIB Center for Neuroscience, VIB

M

Meine Ramakers

VIB Center for Neuroscience, VIB

S

Sarah C. Borrie

VIB Center for Neuroscience, VIB

D

Dries T’Syen

VIB Center for Neuroscience, VIB

D

Daan Moechars

VIB Center for Neuroscience, VIB

M

Malgorzata A. Sliwinska

VIB Center for Neuroscience, VIB

B

Brajabandhu Pradhan

VIB Center for Neuroscience, VIB

G

Giulia Albertini

VIB Center for Neuroscience, VIB

N

Nóra Baligács

VIB Center for Neuroscience, VIB

G

Grigoria Tsaka

B

Bert Houben

VIB Center for Neuroscience, VIB

M

Mark Fiers

VIB Center for Neuroscience, VIB

R

Rodrigo Gallardo

VIB Center for Neuroscience, VIB

M

Maarten Dewilde

Laboratory for Therapeutic and Diagnostic Antibodies, Department of Pharmaceutical and Pharmacological Sciences, University of Leuven (KU Leuven)

D

Dietmar Rudolf Thal

M

Michael Willem

Biomedical Center, Biochemistry, Faculty of Medicine, Ludwig-Maximilians-Universität München

J

Jonas J. Neher

Biomedical Center, Biochemistry, Faculty of Medicine, Ludwig-Maximilians-Universität München

B

Bart De Strooper

VIB Center for Neuroscience, VIB

F

Frederic Rousseau

J

Joost Schymkowitz