Distinct mechanoreceptor pezo-1 isoforms modulate food intake in the nematode Caenorhabditis elegans

Author:

Hughes Kiley1,Shah Ashka1,Bai Xiaofei2,Adams Jessica1,Bauer Rosemary2,Jackson Janelle1,Harris Emily1,Ficca Alyson1,Freebairn Ploy1,Mohammed Shawn1,Fernández Eliana M3,Bainbridge Chance1,Brocco Marcela3,Stein Wolfgang1,Vidal-Gadea Andrés G1

Affiliation:

1. School of Biological Sciences, Illinois State University, Normal, IL, 61790, USA

2. National Institute of Diabetes and Digestive and Kidney Diseases,National Institutes of Health, Bethesda, MD, 20892, USA

3. Instituto de Investigaciones Biotecnológicas, Universidad Nacional de San Martín (UNSAM); Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET) San Martín; Buenos Aires, 1650, Argentina

Abstract

Abstract Two PIEZO mechanosensitive cation channels, PIEZO1 and PIEZO2, have been identified in mammals, where they are involved in numerous sensory processes. While structurally similar, PIEZO channels are expressed in distinct tissues and exhibit unique properties. How different PIEZOs transduce force, how their transduction mechanism varies, and how their unique properties match the functional needs of the tissues they are expressed in remain all-important unanswered questions. The nematode Caenorhabditis elegans has a single PIEZO ortholog (pezo-1) predicted to have twelve isoforms. These isoforms share many transmembrane domains but differ in those that distinguish PIEZO1 and PIEZO2 in mammals. We used transcriptional and translational reporters to show that putative promoter sequences immediately upstream of the start codon of long pezo-1 isoforms predominantly drive GFP expression in mesodermally derived tissues (such as muscle and glands). In contrast, sequences upstream of shorter pezo-1 isoforms resulted in GFP expression primarily in neurons. Putative promoters upstream of different isoforms drove GFP expression in different cells of the same organs of the digestive system. The observed unique pattern of complementary expression suggests that different isoforms could possess distinct functions within these organs. We used mutant analysis to show that pharyngeal muscles and glands require long pezo-1 isoforms to respond appropriately to the presence of food. The number of pezo-1 isoforms in C. elegans, their putative differential pattern of expression, and roles in experimentally tractable processes make this an attractive system to investigate the molecular basis for functional differences between members of the PIEZO family of mechanoreceptors.

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology

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