Weight loss by Ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.

Mitochondria play a key role in diverse processes including ATP synthesis and apoptosis. Mitochondrial function can be studied using inhibitors of respiration, and new agents are valuable for discovering novel mechanisms involved in mitochondrial regulation. Here, we screened small molecules derived...

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Main Authors: Toshiyuki Suzuki, Haruhisa Kikuchi, Masato Ogura, Miwako K Homma, Yoshiteru Oshima, Yoshimi Homma
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4323345?pdf=render
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spelling doaj-dc1f246c8d2f4f5eabeef44aaa6bf1ad2020-11-25T02:47:02ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01102e011708810.1371/journal.pone.0117088Weight loss by Ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.Toshiyuki SuzukiHaruhisa KikuchiMasato OguraMiwako K HommaYoshiteru OshimaYoshimi HommaMitochondria play a key role in diverse processes including ATP synthesis and apoptosis. Mitochondrial function can be studied using inhibitors of respiration, and new agents are valuable for discovering novel mechanisms involved in mitochondrial regulation. Here, we screened small molecules derived from slime molds and other microorganisms for their effects on mitochondrial oxygen consumption. We identified Ppc-1 as a novel molecule which stimulates oxygen consumption without adverse effects on ATP production. The kinetic behavior of Ppc-1 suggests its function as a mitochondrial uncoupler. Serial administration of Ppc-1 into mice suppressed weight gain with no abnormal effects on liver or kidney tissues, and no evidence of tumor formation. Serum fatty acid levels were significantly elevated in mice treated with Ppc-1, while body fat content remained low. After a single administration, Ppc-1 distributes into various tissues of individual animals at low levels. Ppc-1 stimulates adipocytes in culture to release fatty acids, which might explain the elevated serum fatty acids in Ppc-1-treated mice. The results suggest that Ppc-1 is a unique mitochondrial regulator which will be a valuable tool for mitochondrial research as well as the development of new drugs to treat obesity.http://europepmc.org/articles/PMC4323345?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Toshiyuki Suzuki
Haruhisa Kikuchi
Masato Ogura
Miwako K Homma
Yoshiteru Oshima
Yoshimi Homma
spellingShingle Toshiyuki Suzuki
Haruhisa Kikuchi
Masato Ogura
Miwako K Homma
Yoshiteru Oshima
Yoshimi Homma
Weight loss by Ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.
PLoS ONE
author_facet Toshiyuki Suzuki
Haruhisa Kikuchi
Masato Ogura
Miwako K Homma
Yoshiteru Oshima
Yoshimi Homma
author_sort Toshiyuki Suzuki
title Weight loss by Ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.
title_short Weight loss by Ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.
title_full Weight loss by Ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.
title_fullStr Weight loss by Ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.
title_full_unstemmed Weight loss by Ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.
title_sort weight loss by ppc-1, a novel small molecule mitochondrial uncoupler derived from slime mold.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Mitochondria play a key role in diverse processes including ATP synthesis and apoptosis. Mitochondrial function can be studied using inhibitors of respiration, and new agents are valuable for discovering novel mechanisms involved in mitochondrial regulation. Here, we screened small molecules derived from slime molds and other microorganisms for their effects on mitochondrial oxygen consumption. We identified Ppc-1 as a novel molecule which stimulates oxygen consumption without adverse effects on ATP production. The kinetic behavior of Ppc-1 suggests its function as a mitochondrial uncoupler. Serial administration of Ppc-1 into mice suppressed weight gain with no abnormal effects on liver or kidney tissues, and no evidence of tumor formation. Serum fatty acid levels were significantly elevated in mice treated with Ppc-1, while body fat content remained low. After a single administration, Ppc-1 distributes into various tissues of individual animals at low levels. Ppc-1 stimulates adipocytes in culture to release fatty acids, which might explain the elevated serum fatty acids in Ppc-1-treated mice. The results suggest that Ppc-1 is a unique mitochondrial regulator which will be a valuable tool for mitochondrial research as well as the development of new drugs to treat obesity.
url http://europepmc.org/articles/PMC4323345?pdf=render
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