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Castilla-Vallmanya, L.

Publications and source records attributed to Castilla-Vallmanya, L..

6 recordsLinked to original sources

De novo missense variants in TRIM28 identified in individuals with neurodevelopmental delay show features of transposable element activation

TRIM28 is an epigenetic co-repressor protein that silences transposable elements (TEs). Although loss-of-function studies in mice led to neurodevelopmental defects, a functional link between TRIM28 and human neurodevelopment has yet to be established. In this study, we describe two patients with neurodevelopmental delay who carry de novo TRIM28 missense variants. Using CRISPR-edited induced pluripotent stem cell lines and differentiated neural organoids, we demonstrate that these variants result in the loss of the histone mark H3K9me3 over TEs. This releases the regulatory potential of TEs resulting in altered expression of nearby genes. These findings could be replicated using CRISPRi-based TRIM28 silencing, which suggests that the two variants result in a loss of function. Our results highlight the critical role of TRIM28 in regulating TEs during human brain development, establishing a link between TRIM28 variants and neurodevelopmental delay. One Sentence SummaryTRIM28 variants disrupt epigenetic control of transposable elements in the developing human brain, linking them to neurodevelopmental delay.

neuroscience↗

TEsingle enables locus-specific transposable element expression analysis at single-cell resolution

Transposable elements (TEs) are mobile genetic sequences that can generate new copies of themselves via insertional mutations. These viral-like sequences comprise nearly half the human genome and are present in most genome wide sequencing assays. While only a small fraction of genomic TEs have retained their ability to transpose, TE sequences are often transcribed from their own promoters or as part of larger gene transcripts. Accurately assessing TE expression from each individual genomic TE locus remains an open problem in the field, due to the highly repetitive nature of these multi-copy sequences. These issues are compounded in single-cell and single-nucleus transcriptome experiments, where additional complications arise due to sparse read coverage and unprocessed mRNA introns. Here we present our tool for single-cell TE and gene expression analysis, TEsingle. Using synthetic datasets, we show the problems that arise when not properly accounting for intron retention events, failing to address uncertainty in alignment scoring, and failing to make use of unique molecular identifiers for transcript resolution. Addressing these challenges has enabled an accurate TE analysis suite that simultaneously tracks gene expression as well as locus-specific resolution of expressed TEs. We showcase the performance of TEsingle using single-nucleus profiles from substantia nigra (SN) tissues of Parkinsons Disease (PD) patients. We find examples of young and intact TEs that mark dopaminergic neurons (DA) as well as many young TEs from the LINE and ERV families that are elevated in PD neurons and glia. These results demonstrate that TE expression is highly cell-type and cellular-state specific and elevated in particular subsets of neurons, astrocytes, and microglia from PD patients.

genomics↗

Retroviral insertions contributed to the divergence of human and chimpanzee brains

Over the past 5-7 million years, humans and chimpanzees have diverged in brain size, structural complexity, and cognitive abilities despite high conservation of protein-coding genes. Notably, the endogenization and proliferation of retroviral infections within host genomes has introduced numerous species-specific regulatory elements that have the potential to influence gene regulation. However, the role of these endogenous retroviruses in hominoid brain evolution remains unclear. A burst of lineage-specific PTERV1 retroviruses recently invaded the chimpanzee genome but are absent in humans. We conducted an epigenomic analysis of PTERV1 insertions in chimpanzee neural organoids and found that they are heavily covered by DNA methylation, representing more than 150 species-specific heterochromatin domains with the capacity to influence gene regulatory networks. We identified one such chimpanzee-specific PTERV1 insertion on chromosome 19 that blocks the expression of the long noncoding RNA LINC00662, via DNA methylation spread to the adjacent genomic region. The expression of LINC00662 was restored in chimpanzee induced pluripotent stem cells when we deleted the PTERV1 insertion using CRISPR editing. We found that LINC00662, a human-specific RNA, is highly expressed in the developing brain and plays an important role in the posttranscriptional control of neuronal maturation, axon outgrowth, and neural organoid development. In summary, our findings describe how endogenous retroviral insertions contributed to the functional divergence of the human and chimpanzee brains. This provides a new mechanism by which retroviral pandemics influenced primate brain speciation.

evolutionary biology↗

Activation of transposable elements is linked to a region- and cell-type-specific interferon response in Parkinson's disease

Parkinsons disease (PD) is a neurodegenerative disorder involving a neuroinflammatory response, the cause of which remains unclear. Transposable elements (TE) have been linked to inflammation, but their potential role in PD remains unexplored. Using bulk- and single-nuclei RNAseq of postmortem brain tissue from four brain regions, we studied TE transcription and its correlation with PD neuroinflammation. Over a thousand TEs, including LINE-1s and ERVs, were expressed in a cell-type and region-specific manner in the human brain. Increased TE expression was found in microglia and neurons in the substantia nigra and putamen of PD brains, but not amygdala or prefrontal cortex, compared to controls. This TE activation correlated with an innate immune response in the same brain regions. The link between an interferon response and TE activation was mechanistically confirmed using human pluripotent stem cell-derived microglia and neurons. Our findings provide insights into TE transcription in the PD brain and suggest TEs may contribute to neuroinflammation and pathological progression in PD. Teaser: Transposable elements are linked to a cell type specific inflammatory state in Parkinsons Disease.

neuroscience↗

MORC2 directs transcription-dependent CpG methylation of human LINE-1 transposons in early neurodevelopment

Methylation of CpG dinucleotides is essential for silencing genomic repeats such as LINE-1 retrotransposons (L1s) in the germline and soma. Evolutionarily-young L1s are transcribed in human pluripotent stem cells, but how CpG methylation is patterned to these L1s upon exit of pluripotency is unknown. Here we investigate the critical functions of chromatin regulator MORC2 in epigenome reprogramming of the repetitive genome in early human neurodevelopment. We find that reversible ATP-dependent dimerization is required for MORC2 accumulation over L1s but not gene promoters. Engineered mutations of the MORC2 ATPase module severely disrupts the distribution of MORC2 chromatin binding, leading to simultaneous loss of L1 transcriptional control and hyper-repression of clustered ZNF genes in human pluripotent stem cells. Upon neural differentiation these phenotypes persist due to striking, targeted defects in CpG methylation patterning. Together our results define the vital role of MORC2 in safeguarding the somatic human genome upon exit of pluripotency by directing CpG methylation patterning over transcriptionally-active retrotransposons in a manner analogous to the piRNA pathway in the germline.

molecular biology↗

LINE-1 retrotransposons regulate the exit of human pluripotency and early brain development

Long interspersed nuclear element 1 (L1) retrotransposons represent a vast source of divergent genetic information. However, mechanistic analysis of whether and how L1s contribute to human developmental programs is lacking, in part due to the challenges associated with specific profiling and manipulation of human L1 expression. Here we show that thousands of hominoid-specific L1 integrants are expressed in human induced pluripotent stem cells and cerebral organoids. The activity of individual L1 promoters is surprisingly divergent and correlates with an active epigenetic state. Efficient on-target CRISPRi silencing of L1s revealed nearly a hundred co-opted L1-derived chimeric transcripts and L1 silencing resulted in changes in neural differentiation programs and reduced cerebral organoid size. Together, these data implicate L1s and L1-derived transcripts in hominoid-specific CNS developmental processes.

developmental biology↗