» Articles » PMID: 38552925

CSMD1 Regulates Brain Complement Activity and Circuit Development

Abstract

Complement proteins facilitate synaptic elimination during neurodevelopmental pruning, but neural complement regulation is not well understood. CUB and Sushi Multiple Domains 1 (CSMD1) can regulate complement activity in vitro, is expressed in the brain, and is associated with increased schizophrenia risk. Beyond this, little is known about CSMD1 including whether it regulates complement activity in the brain or otherwise plays a role in neurodevelopment. We used biochemical, immunohistochemical, and proteomic techniques to examine the regional, cellular, and subcellular distribution as well as protein interactions of CSMD1 in the brain. To evaluate whether CSMD1 is involved in complement-mediated synapse elimination, we examined Csmd1-knockout mice and CSMD1-knockout human stem cell-derived neurons. We interrogated synapse and circuit development of the mouse visual thalamus, a process that involves complement pathway activity. We also quantified complement deposition on synapses in mouse visual thalamus and on cultured human neurons. Finally, we assessed uptake of synaptosomes by cultured microglia. We found that CSMD1 is present at synapses and interacts with complement proteins in the brain. Mice lacking Csmd1 displayed increased levels of complement component C3, an increased colocalization of C3 with presynaptic terminals, fewer retinogeniculate synapses, and aberrant segregation of eye-specific retinal inputs to the visual thalamus during the critical period of complement-dependent refinement of this circuit. Loss of CSMD1 in vivo enhanced synaptosome engulfment by microglia in vitro, and this effect was dependent on activity of the microglial complement receptor, CR3. Finally, human stem cell-derived neurons lacking CSMD1 were more vulnerable to complement deposition. These data suggest that CSMD1 can function as a regulator of complement-mediated synapse elimination in the brain during development.

Citing Articles

Chromosome 4 Duplication Associated with Strabismus Leads to Gene Expression Changes in iPSC-Derived Cortical Neurons.

Martinez-Sanchez M, Skarnes W, Jain A, Vemula S, Sun L, Rockowitz S Genes (Basel). 2025; 16(1).

PMID: 39858627 PMC: 11764630. DOI: 10.3390/genes16010080.


The Invertebrate Immunocyte: A Complex and Versatile Model for Immunological, Developmental, and Environmental Research.

Sacchi S, Malagoli D, Franchi N Cells. 2025; 13(24.

PMID: 39768196 PMC: 11674123. DOI: 10.3390/cells13242106.


Brain-wide cell-type-specific transcriptomic signatures of healthy ageing in mice.

Jin K, Yao Z, van Velthoven C, Kaplan E, Glattfelder K, Barlow S Nature. 2025; 638(8049):182-196.

PMID: 39743592 PMC: 11798837. DOI: 10.1038/s41586-024-08350-8.


Molecular Signatures of Resilience to Alzheimer's Disease in Neocortical Layer 4 Neurons.

Dharshini S, Sanz-Ros J, Pan J, Tang W, Vallejo K, Otero-Garcia M bioRxiv. 2024; .

PMID: 39574639 PMC: 11580857. DOI: 10.1101/2024.11.03.621787.


Photoproximity labeling of endogenous receptors in the live mouse brain in minutes.

Takato M, Sakamoto S, Nonaka H, Tanimura Valor F, Tamura T, Hamachi I Nat Chem Biol. 2024; 21(1):109-119.

PMID: 39090312 DOI: 10.1038/s41589-024-01692-4.