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Dlx1/2 mice have abnormal enteric nervous system function
Christina M. Wright, James P. Garifallou, Sabine Schneider, Heather L. Mentch, Deepika R. Kothakapa, Beth A. Maguire, Robert O. Heuckeroth
Christina M. Wright, James P. Garifallou, Sabine Schneider, Heather L. Mentch, Deepika R. Kothakapa, Beth A. Maguire, Robert O. Heuckeroth
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Research Article Development Neuroscience

Dlx1/2 mice have abnormal enteric nervous system function

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Abstract

Decades ago, investigators reported that mice lacking DLX1 and DLX2, transcription factors expressed in the enteric nervous system (ENS), die with possible bowel motility problems. These problems were never fully elucidated. We found that mice lacking DLX1 and DLX2 (Dlx1/2–/– mice) had slower small bowel transit and reduced or absent neurally mediated contraction complexes. In contrast, small bowel motility seemed normal in adult mice lacking DLX1 (Dlx1–/–). Even with detailed anatomic studies, we found no defects in ENS precursor migration, or neuronal and glial density in Dlx1/2–/– or Dlx1–/– mice. However, RNA sequencing of Dlx1/2–/– ENS revealed dysregulation of many genes, including vasoactive intestinal peptide (Vip). Using immunohistochemistry and reporter mice, we then found that Dlx1/2–/– mice have reduced VIP expression and fewer VIP-lineage neurons in their ENS. Our study reveals what we believe is a novel connection between Dlx genes and Vip and highlights the observation that dangerous bowel motility problems can occur in the absence of easily identifiable ENS structural defects. These findings may be relevant for disorders like chronic intestinal pseudo-obstruction (CIPO) syndrome.

Authors

Christina M. Wright, James P. Garifallou, Sabine Schneider, Heather L. Mentch, Deepika R. Kothakapa, Beth A. Maguire, Robert O. Heuckeroth

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Figure 4

Dlx1/2–/– mice have normal density of neurons, SOX10+ cells, and glia at P0.

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Dlx1/2–/– mice have normal density of neurons, SOX10+ cells, and glia a...
(A–J) Representative images of Dlx1/2+/+ and Dlx1/2–/– bowel immunostained for HuC/D (magenta) and TuJ1 (green). MP, myenteric plexus; SP, submucosal plexus. (K–O) Quantification of neurons in A–J shows no difference between neuronal number in control or mutant mice (Student’s t test; n = 3–4 per condition). (P–S) Representative images of Dlx1/2+/+ and Dlx1/2–/– bowel immunostained for S100β (magenta) and SOX10 (green). (T–W) Dlx1/2–/– mice had normal numbers of SOX10+ cells at P0 (Student’s t test; n = 3–4 per condition; T and U) and normal numbers of SOX10+S100β+ glia at P0 (Student’s t test; n = 3–4 per condition; V and W). Scale bars: 100 μm.

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