Defined human tri-lineage brain microtissues
Uenaka, T.; Jung, S.; Kumar, I.; Vodehnal, K.; Rastogi, M.; Yoo, Y.; Koontz, M.; Thome, C.; Li, W.; Chan, T.; Green, E. M.; Chesnov, K.; Sun, Z.; Zhang, S.; Wang, J.; Venida, A.; Mahul Mellier, A.-L.; Atkins, M.; Jackrel, M.; Skotheim, J. M.; Wyss-Coray, T.; Abu-Remaileh, M.; Lashuel, H. A.; Bassik, M. C.; Sudhof, T. C.; del Sol, A.; Ullian, E.; Wernig, M.
Show abstract
Microglia are the immune cells of the central nervous system and are thought to be key players in both physiological and disease conditions. Several microglial features are poorly conserved between mice and human, such as the function of the neurodegeneration-associated immune receptor Trem2. Induced pluripotent stem cell (iPSC)-derived microglia offer a powerful opportunity to generate and study human microglia. However, human iPSC-derived microglia often exhibit activated phenotypes in vitro, and assessing their impact on other brain cell types remains challenging due to limitations in current co-culture systems. Here, we developed fully defined brain microtissues, composed of human iPSC-derived neurons, astrocytes, and microglia, co-cultured in 2D or 3D formats. Our microtissues are stable and self-sufficient over time, requiring no exogenous cytokines or growth factors. All three cell types exhibit morphologies characteristic of their in vivo environment and show functional properties. Co-cultured microglia develop more homeostatic phenotypes compared to microglia exposed to exogenous cytokines. Hence, these tri-cultures provide a unique approach to investigate cell-cell interactions between brain cell types. We found that astrocytes and not neurons are sufficient for microglial survival and maturation, and that astrocyte-derived M-CSF is essential for microglial survival. Single-cell and single-nucleus RNA sequencing analyses nominated a network of reciprocal communication between cell types. Brain microtissues faithfully recapitulated pathogenic -synuclein seeding and aggregation, suggesting their usefulness as human cell models to study not only normal but also pathological cell biological processes.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Iterative transcription factor screening enables rapid generation of microglia-like cells from human iPSC 97%
- Reliability of high-quantity human brain organoids for modeling microcephaly, glioma invasion, and drug screening 97%
- Lesion environments direct transplanted neural progenitors towards a wound repair astroglial phenotype 96%
Similar papers in this journal
- Astrocytic cell adhesion genes linked to schizophrenia correlate with synaptic programs in neurons 96%
- Defining the molecular identity and morphology of glia limitans superficialis astrocytes in mouse and human 95%
- Microglia reactivity entails microtubule remodeling from acentrosomal to centrosomal arrays 95%
Similar papers in this journal
- Type I interferon responsive microglia shape cortical development and behavior 94%
- Characterizing and targeting glioblastoma neuron-tumor networks with retrograde tracing 94%
- Simultaneous CRISPR screening and spatial transcriptomics reveals intracellular, intercellular, and functional transcriptional circuits. 94%
Similar papers in this journal
- CRISPRi-based screens in iAssembloids to elucidate neuron-glia interactions 97%
- Brain-Engrafted Monocyte-derived Macrophages from Blood and Skull-Bone Marrow Exhibit Distinct Identities from Microglia 96%
- The Alzheimers Disease Risk Genes MS4A4A And MS4A6A Cooperate to Negatively Regulate Trem2 and Microglia states 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.