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https://doi.org/10.1096/fj.201700252RR
Title: | FFAR2-FFAR3 receptor heteromerization modulates short-chain fatty acid sensing | Authors: | Ang, Zhiwei Xiong, Ding Wu, Min Ding, Jeak Ling |
Keywords: | Science & Technology Life Sciences & Biomedicine Biochemistry & Molecular Biology Biology Cell Biology Life Sciences & Biomedicine - Other Topics GPCR heteromer FFA2/GPR43 FFA3/GPR41 RESONANCE ENERGY-TRANSFER GUT MICROBIOTA INFLAMMATORY RESPONSES SIGNALING CASCADES BETA-ARRESTIN HUMAN COLON GPR43 ACTIVATION INTERNALIZATION EXPRESSION |
Issue Date: | 1-Jan-2018 | Publisher: | FEDERATION AMER SOC EXP BIOL | Citation: | Ang, Zhiwei, Xiong, Ding, Wu, Min, Ding, Jeak Ling (2018-01-01). FFAR2-FFAR3 receptor heteromerization modulates short-chain fatty acid sensing. FASEB JOURNAL 32 (1) : 289-+. ScholarBank@NUS Repository. https://doi.org/10.1096/fj.201700252RR | Abstract: | Free fatty acid receptors 2 and 3 (FFAR2/FFA2/GPR43 and FFAR3/FFA3/GPR41) are mammalian receptors for gut microbiota–derived short-chain fatty acids (SCFAs). These receptors are promising drug targets for obesity, colitis, colon cancer, asthma, and arthritis. Here, we demonstrate that FFAR2 and FFAR3 interact to form a heteromer in primary human monocytes and macrophages via proximity ligation assay, and during heterologous expression in HEK293 cells via bimolecular fluorescence complementation and fluorescence resonance energy transfer. The FFAR2-FFAR3 heteromer displayed enhanced cytosolic Ca2+ signaling (1.5-fold increase relative to homomeric FFAR2) and b-arrestin-2 recruitment (30-fold increase relative to homomeric FFAR3). The enhanced heteromer signaling was attenuated by FFAR2 antagonism (CATPB), Gaq inhibition (YM254890), or Gai inhibition (pertussis toxin). Unlike homomeric FFAR2/ 3, the heteromer lacked the ability to inhibit cAMP production but gained the ability to induce p38 phosphorylation in HEK293 and inflammatory monocytes via a CATPB- and YM254890-sensitive mechanism. Our data, taken together, reveal that FFAR2 and FFAR3 may interact to form a receptor heteromer with signaling that is distinct from the parent homomers—a novel pathway for drug targeting.Ang, Z., Xiong, D., Wu, M., Ding, J. L. FFAR2-FFAR3 receptor heteromerization modulates short-chain fatty acid sensing | Source Title: | FASEB JOURNAL | URI: | https://scholarbank.nus.edu.sg/handle/10635/193709 | ISSN: | 08926638 15306860 |
DOI: | 10.1096/fj.201700252RR |
Appears in Collections: | Staff Publications Elements |
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FASEB J (2018) vol 32, 289-303.pdf | Published version | 1.46 MB | Adobe PDF | OPEN | Published | View/Download |
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