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Published on: July 28, 2023
Therapy Development for Microvillus Inclusion Disease using Patient-derived Enteroids
Meri Kalashyan1, Krishnan Raghunathan1, Haley Oller1
1Division of Gastroenterology, Hepatology and Nutrition, Boston Children's Hospital; Harvard Medical School, Boston, MA.
Abstract:
Microvillus Inclusion Disease (MVID), caused by loss-of-function mutations in the motor protein Myosin Vb (MYO5B), is a severe infantile disease characterized by diarrhea, malabsorption, and acid-base instability, requiring intensive parenteral support for nutritional and fluid management. Human patient-derived enteroids represent a model for investigation of monogenic epithelial disorders but are a rare resource from MVID patients. We developed human enteroids with different loss-of function MYO5B variants and showed that they recapitulated the structural changes found in native MVID enterocytes. Multiplex Immunofluorescence imaging of patient duodenal tissues revealed patient-specific changes in localization of brush border transporters. Functional analysis of electrolyte transport revealed profound loss of Na + /H + exchange (NHE) activity in MVID patient enteroids with near-normal chloride secretion. The chloride channel-blocking anti-diarrheal drug, Crofelemer, dose-dependently inhibited agonist-mediated fluid secretion. MVID enteroids exhibited altered differentiation and maturation versus healthy enteroids. Inhibition of Notch signaling with the γ-secretase inhibitor, DAPT, recovered apical brush border structure and functional Na + /H + exchange activity in MVID enteroids. Transcriptomic analysis revealed potential pathways involved in the rescue of MVID cells including serum- and glucocorticoid-induced protein kinase 2 (SGK2), and NHE regulatory factor 3 (NHERF3). These results demonstrate the utility of patient-derived enteroids for developing therapeutic approaches to MVID.
Conflict-Of-Interest Statement:
The authors have declared that no conflict of interest exists.
Insights
Microvillus Inclusion Disease (MVID) patient enteroids show structural and functional defects. Notch inhibition with DAPT restored brush border structure and Na+/H+ exchange, offering therapeutic potential.
Area of Science:
- Gastroenterology and Hepatology
- Cell Biology
- Genetics
Background:
- Microvillus Inclusion Disease (MVID) is a severe infantile enteropathy caused by MYO5B mutations, leading to malabsorption and requiring intensive care.
- Patient-derived enteroids are valuable for studying monogenic epithelial disorders, but are scarce for MVID.
Approach:
- Developed human enteroids from MVID patients with MYO5B loss-of-function variants to model the disease.
- Utilized multiplex immunofluorescence, electrolyte transport assays, and transcriptomic analysis to investigate MVID pathology and therapeutic targets.
- Investigated the effects of Notch signaling inhibition using DAPT on MVID enteroid structure and function.
Key Points:
- MVID enteroids recapitulated in vivo structural changes and showed impaired Na+/H+ exchange but near-normal chloride secretion.
- The anti-diarrheal drug Crofelemer inhibited agonist-mediated fluid secretion in MVID enteroids.
- Notch inhibition with DAPT restored brush border structure and Na+/H+ exchange activity in MVID enteroids.
Conclusions:
- Patient-derived enteroids are a powerful tool for understanding MVID pathogenesis and developing therapeutic strategies.
- Notch signaling inhibition presents a promising therapeutic avenue for MVID by restoring enterocyte structure and function.
- Identified SGK2 and NHERF3 as potential pathways involved in rescuing MVID cells.

