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Biology subjects

Heuckeroth, R. O.

Publications and source records attributed to Heuckeroth, R. O..

3 recordsLinked to original sources

Identifying and treating CLN3 disease outside the central nervous system

Background and aimsSevere gastrointestinal (GI) symptoms occur in people with CLN3 disease, a neurodegenerative disorder. If left untreated these GI symptoms compromise life quality and may contribute to death. We hypothesized GI symptoms in CLN3 disease are at least partially due to neurodegeneration in the enteric nervous system (ENS), the master regulator of bowel function. MethodsWe examined the integrity of the ENS in human CLN3 autopsy small bowel and colon, and in CLN3 deficient (Cln3{Delta}ex7/8) mice. We performed detailed immunohistological analyses of enteric neurons and glia and assessed bowel transit times at multiple disease stages. We then tested the therapeutic potential of neonatal intravenous gene therapy (AAV9-hCLN3) to prevent bowel phenotypes in Cln3{Delta}ex7/8 mice. ResultsHuman CLN3 bowel displayed a profound loss of enteric neurons and their neurites, with pathological effects upon enteric glia. Cln3{Delta}ex7/8 mice had normal appearing ENS at 1 month of age, but then experienced progressive loss of both enteric neurons and glia accompanied by marked bowel distention, resembling the human CLN3 phenotype. Degenerative changes in Cln3{Delta}ex7/8 mouse enteric neurons and glia were largely prevented by systemic neonatal delivery of AAV9-hCLN3 gene therapy, preventing bowel distention at disease endstage. ConclusionsOur findings demonstrate that CLN3 deficiency profoundly damages enteric neurons and glia in both murine and human CLN3 disease, contributing to GI dysfunction. This study provides preclinical evidence that systemic gene therapy may effectively treat multiple aspects of bowel pathology, expanding the therapeutic landscape beyond the CNS. What you need to know: Background and ContextSignificant gastrointestinal (GI) symptoms are evident in many pediatric neurological conditions. We hypothesized that, in addition to central nervous system (CNS) effects, defects in the enteric nervous system (ENS) may underlie these GI symptoms in some neurodegenerative diseases. Revealing such defects would open up new opportunities for treating these life-limiting and debilitating symptoms. New FindingsThe enteric nervous system is significantly impacted in human CLN3 disease, a feature that is recapitulated in CLN3 mice. Progressive enteric neurodegeneration in these mice follows a similar time course to neuron loss in the brain, resulting in severe bowel distention. Nevertheless, bowel distention and the majority of the pathology within the enteric nervous system can be mitigated via neonatal gene therapy. LimitationsOur human data will need to be replicated in larger numbers of CLN3 cases, and methods will need to be developed to treat the human bowel, avoiding the risk of liver tumors. ImpactThese results reveal that a neurodegenerative disease previously thought to primarily affect the CNS, damages the bowels enteric nervous system and that ENS degeneration can be prevented in mice by gene therapy. These data provide a new perspective on this pediatric disorder and may have relevance to other pediatric neurologic diseases. Lay SummaryThe progressive loss of neurons in CLN3 disease is not confined to the brain but also occurs in the bowel enteric nervous system, contributing directly to GI dysfunction. Neurodegeneration in the enteric nervous system can be prevented by treating the bowel with gene therapy.

neuroscience↗

Rapid cyclic stretching induces synthetic, proinflammatory phenotypes in cultured human intestinal smooth muscle, with the potential to alter signaling to adjacent bowel cells

Background and AimsBowel smooth muscle experiences mechanical stress constantly during normal function, and pathologic mechanical stressors in disease states. We tested the hypothesis that pathologic mechanical stress could alter transcription to induce smooth muscle phenotypic class switching. MethodsPrimary human intestinal smooth muscle cells (HISMCs), seeded on electrospun aligned poly-{varepsilon}-caprolactone nano-fibrous scaffolds, were subjected to pathologic, high frequency (1 Hz) uniaxial 3% cyclic stretch (loaded) or kept unloaded in culture for 6 hours. Total RNA sequencing, qRT-PCR, and quantitative immunohistochemistry defined loading-induced changes in gene expression. NicheNet predicted how differentially expressed genes might impact HISMCs and other bowel cells. ResultsLoading induced differential expression of 4537 genes in HISMCs. Loaded HISMCs had a less contractile phenotype, with increased expression of synthetic SMC genes, proinflammatory cytokines, and altered expression of axon guidance molecules, growth factors and morphogens. Many differentially expressed genes encode secreted ligands that could act cell-autonomously on smooth muscle and on other cells in the bowel wall. DiscussionHISMCs demonstrate remarkably rapid phenotypic plasticity in response to mechanical stress that may convert contractile HISMCs into proliferative, fibroblast-like cells or proinflammatory cells. These mechanical stress-induced changes in HISMC gene expression may be relevant for human bowel disease.

bioengineering↗

Single Nucleus Sequencing of Human Colon Visceral Smooth Muscle Cells, PDGFRα Cells, and Interstitial Cells of Cajal

Background and AimsSmooth muscle cells (SMCs), Interstitial cells of Cajal (ICCs), and PDGFR+ cells (PCs) form a functional syncytium in the bowel known as the SIP syncytium. The SIP syncytium works in concert with the enteric nervous system (ENS) to coordinate bowel motility. However, our understanding of individual cell types that form this syncytium and how they interact with each other remains limited, with no prior single cell RNAseq analyses focused on human SIP syncytium cells. MethodsWe analyzed single-nucleus RNA sequencing data from 10,749 human colon SIP syncytium cells (5572 SMC, 372 ICC, and 4805 PC nuclei) derived from 15 individuals. ResultsConsistent with critical contractile and pacemaker functions and with known ENS interactions, SIP syncytium cell types express many ion channels including mechanosensitive channels in ICCs and PCs. PCs also prominently express ECM-associated genes and the inhibitory neurotransmitter receptor for vasoactive intestinal peptide (VIPR2), a novel finding. We identified two PC clusters that differ in expression of many ion channels and transcriptional regulators. Interestingly, SIP syncytium cells co-express 6 transcription factors (FOS, MEIS1, MEIS2, PBX1, SCMH1, and ZBTB16) that may be part of a combinatorial signature that specifies these cells. Bowel region-specific differences in SIP syncytium gene expression may correlate with regional differences in function, with right (ascending) colon SMCs and PCs expressing more transcriptional regulators and ion channels than SMCs and PCs in left (sigmoid) colon. ConclusionThese studies provide new insights into SIP syncytium biology that may be valuable for understanding bowel motility disorders and lead to future investigation of highlighted genes and pathways. SynopsisIn this first single nucleus RNASeq analysis of human SIP syncytium, we identify novel features of SIP syncytium cells, including two types of PDGFR+ cells, a SIP-specific combinatorial transcription factor signature, and colon region differences in gene expression.

cell biology↗