Search bioRxiv⌕ Search

Biology subjects

Lippi, G.

Publications and source records attributed to Lippi, G..

4 recordsLinked to original sources

MicroRNAs are necessary for the emergence of Purkinje cell identity

Brain computations are dictated by the unique morphology and connectivity of neuronal subtypes, features established by closely timed developmental events. MicroRNAs (miRNAs) are critical for brain development, but current technologies lack the spatiotemporal resolution to determine how miRNAs instruct the steps leading to subtype identity. Here, we developed new tools to tackle this major gap. Fast and reversible miRNA loss-of-function revealed that miRNAs are necessary for cerebellar Purkinje cell (PC) differentiation, which previously appeared miRNA-independent, and resolved distinct miRNA critical windows in PC dendritogenesis and climbing fiber synaptogenesis, key determinants of PC identity. To identify underlying mechanisms, we generated a mouse model, which enables precise mapping of miRNAs and their targets in rare cell types. With PC-specific maps, we found that the PC-enriched miR-206 drives exuberant dendritogenesis and modulates synaptogenesis. Our results showcase vastly improved approaches for dissecting miRNA function and reveal that many critical miRNA mechanisms remain largely unexplored. HighlightsO_LIFast miRNA loss-of-function with T6B impairs postnatal Purkinje cell development C_LIO_LIReversible T6B reveals critical miRNA windows for dendritogenesis and synaptogenesis C_LIO_LIConditional Spy3-Ago2 mouse line enables miRNA-target network mapping in rare cells C_LIO_LIPurkinje cell-enriched miR-206 regulates its unique dendritic and synaptic morphology C_LI

neuroscience↗

Building functional circuits in multispecies brains.

The genome is the ultimate architect of the brain. Its evolutionary variations build the neural circuits that endow each species with its innate senses and behaviors. A central question for neuroscience and translational medicine is whether neural circuits from two species can be made to function in an intact brain. Here, we establish genetic tools and use blastocyst complementation to selectively build and test interspecies neural circuits in rat-mouse brains. Despite [~]10-20 million years of evolution and prominent differences in brain size and cellular composition, rat pluripotent stem cells injected into mouse blastocysts widely populate and persist in the mouse brain. Unexpectedly, the mouse niche reprograms the birthdates of cortical and hippocampal rat neurons, where they also form synaptically active rat-mouse circuits. By genetically disabling host olfactory circuitry, we show that rat neurons restore synaptic information flow from the nose to the cortex. Rat neurons can also rescue a primal olfactory behavior (food-seeking), though less than mouse controls. By enabling a mouse to sense the world with rat neurons, we highlight the power of interspecies neural blastocyst complementation to uncover mechanisms of neural circuit development and evolution, and to inform efforts to rescue neural circuits affected by injury or disease.

developmental biology↗

MicroRNA-218 instructs proper assembly of hippocampal networks

The assembly of the mammalian brain is orchestrated by temporally coordinated waves of gene expression. A key aspect of this developmental program is mediated at the post-transcriptional level by microRNAs (miRNAs). Deletion of neuronal enriched miRNAs induces strong developmental phenotypes, and multiple reports have found altered levels of miRNAs in patients with neurodevelopmental disorders. However, cellular and molecular mechanisms used by miRNAs to instruct proper brain development remain largely unexplored. Here, through multiple screens, we identified miR-218 as a critical regulator of hippocampal assembly in mice. MiR-218 is highly expressed in the hippocampus and enriched in both excitatory principal neurons and GABAergic inhibitory interneurons. Transient inhibition of miR-218 in early life results in an adult brain with heightened network activity and a predisposition to seizures. We used RNA-seq and FACS-seq (fluorescence-activated cell sorting followed by RNA-seq) to identify global and cell type-specific changes in gene expression in the absence of miR-218 and narrow down which altered developmental processes would lead to long-term network instability. We find that miR-218 inhibition results in the disruption of early depolarizing GABAergic signaling, structural defects in dendritic spines, and altered intrinsic membrane excitability. Finally, conditional knockout of miR-218 in interneurons, but not pyramidal neurons is sufficient to recapitulate the effects on long-term stability. Taken together, the data suggest that miR-218 orchestrates hippocampal network assembly to produce a stable network in the adult, primarily by regulating interneuron function in early postnatal life.

neuroscience↗

ACE2 expression and localization are regulated by CFTR: implications beyond cystic fibrosis

As an inherited disorder characterized by severe pulmonary disease, cystic fibrosis (CF) could be considered a comorbidity for coronavirus disease 2019 (COVID-19)1. Instead, CF seems to constitute an advantage in COVID-19 infection2-5. To clarify whether host factors expressed by the CF epithelia may influence COVID-19 progression, we investigated the expression of SARS-CoV-2 receptor and coreceptors in primary airway epithelial cells. We found that angiotensin converting enzyme 2 (ACE2) expression and localization are regulated by cystic fibrosis transmembrane conductance regulator (CFTR) channels. Consistently, our results indicate that dysfunctional CFTR channels alter susceptibility to SARS-CoV-2 infection, resulting in reduced viral infection in CF cells. Depending on the pattern of ACE2 expression, the SARS-CoV-2 spike (S) protein induced high levels of Interleukin (IL)-6 in healthy donor-derived primary airway epithelial cells but a very weak response in primary CF cells. Collectively, these data support the hypothesis that CF condition is unfavorable for SARS-CoV-2 infection.

cell biology↗