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Biology subjects

Ciuba, K.

Publications and source records attributed to Ciuba, K..

4 recordsLinked to original sources

Evolutionary diversification of lipid logistics shapes synaptic maturation in primates

The prolonged developmental trajectory of the human brain (neoteny) is a defining feature of human evolution. Yet, the cellular mechanisms underlying this delay remain poorly understood. Here, comparing human and chimpanzee induced neurons and cerebral organoids, we we show that human neurons form fewer excitatory synapses and synchronize network activity later. Electron microscopy further revealed reduced synaptic vesicle docking and clustering near release sites, identifying altered presynaptic assembly as a prominent feature of human neuronal development. Unexpectedly, human neurons accumulate more, not less, membrane lipids, revealing a dissociation between lipid abundance and synaptic maturation. Transcriptomics and synaptosome proteomics resolve this paradox: chimpanzee neurons preferentially engage lipid metabolism and synaptic-maturation programs, whereas human neurons upregulate intracellular lipid transport and trafficking pathways. Together, our findings identify membrane organization as a previously unrecognized regulatory layer that controls neuronal neoteny. These results also suggest that evolutionary divergence can arise through changes in the spatial deployment of membrane lipids rather than their abundance, providing a molecular framework for understanding the evolution of human brain neoteny.

evolutionary biology↗

Primate Astrocyte Evolution Controls the Tempo of Neuronal Development

Prolonged neuronal maturation, also referred to as neoteny, constitutes a hallmark of human brain evolution. Yet, the mechanisms controlling neotenic brain development remain poorly understood, and have been defined as neuron-intrinsic. Astrocytes shape synapse formation, activity, and elimination, and have changed substantially between humans and other species. Yet, whether the evolutionary divergence in astrocytes shapes the timing of neuronal maturation is unknown. Here, we show that astrocytes from humans and their closest living relatives, chimpanzees, exert contrasting effects on neuronal maturation: chimpanzee astrocytes accelerate it, whereas human astrocytes delay it, without affecting neuronal survival. Through comparative transcriptomics and epigenomics, we find that evolutionarily reduced APOE expression in human astrocytes underlies the observed delay in neuronal maturation: restoring APOE levels in human astrocytes accelerates neuronal development. We further establish that the Hippo-TEAD signaling represses APOE expression in human astrocytes, revealing a link between the enhanced morphological complexity of human astrocytes and the observed reduced tempo of neuronal development in their presence. Strikingly, neuronal genes differentially impacted by human and chimpanzee astrocytes are associated with schizophrenia, Alzheimers disease, and epilepsy, linking astrocyte evolution to disease vulnerability. Altogether, these findings establish that brain neoteny is partly a glial phenomenon, revealing that understanding the pace of human brain development requires understanding how astrocytes, not only neurons, have evolved.

neuroscience↗

Molecular signature of primate astrocytes reveals pathways and regulatory changes contributing to the human brain evolution

Astrocytes contribute to the development and regulation of the higher-level functions of the brain, the critical targets of evolution. However, the molecular signature of foetal astrocyte evolution in primates is unknown. Here, to address this question, we use human, chimpanzee, and macaque induced pluripotent stem cell-derived foetal astrocytes (iAstrocytes). Human iAstrocytes are bigger and more complex than the non-human primate iAstrocytes. We find loci related to the regulation of cell size with increased expression in the human lineage. Likewise, we uncover that genes and mechanisms implicated in long-range intercellular signalling are activated in the human iAstrocytes. Strikingly, loci downregulated in the human lineage frequently relate to intellectual disability raising new questions on the trade-offs associated with the evolution of the human mind. Using our system, through a multilevel regulome analysis and machine learning, we uncover that functional activation of enhancers coincides with a previously unappreciated, pervasive gain of binding sites of stripe transcription factors. In summary, we shed new light on a mechanism driving the acquisition of the regulatory potential of enhancers.

neuroscience↗

LUZP1 regulates the assembly of stress fibers by promoting maturation of contractile actomyosin bundles

Contractile actomyosin bundles play crucial roles in various physiological processes, including cell migration, morphogenesis, and muscle contraction. The intricate assembly of actomyosin bundles involves the precise alignment and fusion of myosin II filaments, yet the underlying mechanisms and factors involved in these processes remain elusive. Our study reveals that LUZP1, a leucine zipper protein, plays a central role in orchestrating the formation of thick actomyosin bundles. Loss of LUZP1 caused abnormal cell morphogenesis, migration, and the ability to exert forces on the environment. Importantly, knockout of LUZP1 results in significant defects in the concatenation and persistent association of myosin II filaments, severely impairing the assembly of myosin II stacks. The disruption of these processes in LUZP1 knockout cells provides mechanistic insights into the defective assembly of thick ventral stress fibers and the associated cellular contractility abnormalities. Overall, these results significantly contribute to our understanding of the molecular mechanism involved in actomyosin bundle formation and highlight the essential role of LUZP1 in this process.

cell biology↗