A single transcription factor is sufficient to induce and maintain secretory cell architecture

Author:

Lo Hei-Yong G.,Jin Ramon U.,Sibbel Greg,Liu Dengqun,Karki Anju,Joens Matthew S.,Madison Blair B.,Zhang Bo,Blanc Valerie,Fitzpatrick James A.J.,Davidson Nicholas O.,Konieczny Stephen F.,Mills Jason C.

Abstract

We hypothesized that basic helix–loop–helix (bHLH) MIST1 (BHLHA15) is a “scaling factor” that universally establishes secretory morphology in cells that perform regulated secretion. Here, we show that targeted deletion of MIST1 caused dismantling of the secretory apparatus of diverse exocrine cells. Parietal cells (PCs), whose function is to pump acid into the stomach, normally lack MIST1 and do not perform regulated secretion. Forced expression of MIST1 in PCs caused them to expand their apical cytoplasm, rearrange mitochondrial/lysosome trafficking, and generate large secretory granules. Mist1 induced a cohort of genes regulated by MIST1 in multiple organs but did not affect PC function. MIST1 bound CATATG/CAGCTG E boxes in the first intron of genes that regulate autophagosome/lysosomal degradation, mitochondrial trafficking, and amino acid metabolism. Similar alterations in cell architecture and gene expression were also caused by ectopically inducing MIST1 in vivo in hepatocytes. Thus, MIST1 is a scaling factor necessary and sufficient by itself to induce and maintain secretory cell architecture. Our results indicate that, whereas mature cell types in each organ may have unique developmental origins, cells performing similar physiological functions throughout the body share similar transcription factor-mediated architectural “blueprints.”

Funder

Washington University School of Medicine

Children's Discovery Institute of Washington University

St. Louis Children's Hospital

Foundation for Barnes-Jewish Hospital

National Institute for Neurological Disorders and Stroke

Washington University Center for Regenerative Medicine

Washington University Digestive Disease Core Center

Advanced Imaging and Tissue Analysis Core

National Institutes of Health

National Institute of Diabetes and Digestive and Kidney Diseases

NIH

Siteman Cancer Center Investment Program

Publisher

Cold Spring Harbor Laboratory

Subject

Developmental Biology,Genetics

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