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Gotoh, Y.

Publications and source records attributed to Gotoh, Y..

2 recordsLinked to original sources

Peroxisomes control mitochondrial dynamics and the mitochondrion-dependent pathway of apoptosis

Summary StatementsWe unveil a previously unrecognized role of peroxisomes in the regulation of mitochondrial fission-fusion dynamics, mitochondrion-dependent caspase activation, and cellular apoptosis.\n\nAbstractPeroxisomes cooperate with mitochondria in the performance of cellular metabolic functions such as fatty acid oxidation and maintenance of redox homeostasis. Whether peroxisomes also regulate mitochondrial fission-fusion dynamics or mitochondrion-dependent apoptosis has remained unclear, however. We now show that genetic ablation of the peroxins Pex3 or Pex5, which are essential for peroxisome biogenesis, resulted in mitochondrial fragmentation in mouse embryonic fibroblasts (MEFs) in a manner dependent on dynamin-related protein 1 (Drp1). Conversely, treatment with 4-phenylbutyric acid, an inducer of peroxisome proliferation, resulted in mitochondrial elongation in wild-type MEFs, but not in Pex3-deficient MEFs. We further found that peroxisome deficiency increased the levels of cytosolic cytochrome c and caspase activity under basal conditions without inducing apoptosis. It also greatly enhanced etoposide-induced caspase activation and apoptosis, indicative of an enhanced cellular sensitivity to death signals. Together, our data unveil a previously unrecognized role of peroxisomes in the regulation of mitochondrial dynamics and mitochondrion-dependent apoptosis. Given that mutations of peroxin genes are responsible for lethal disorders such as Zellweger syndrome, effects of such mutations on mitochondrion-dependent apoptosis may contribute to disease pathogenesis.

cell biology

A Chemogenetic Platform for Spatio-temporal Control of β-arrestin Translocation and Signaling at G protein-Coupled Receptors

O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=61 SRC=\"FIGDIR/small/251769_ufig1.gif\" ALT=\"Figure 1\">\nView larger version (15K):\norg.highwire.dtl.DTLVardef@1e4bf96org.highwire.dtl.DTLVardef@de4937org.highwire.dtl.DTLVardef@198dd33org.highwire.dtl.DTLVardef@e26f46_HPS_FORMAT_FIGEXP M_FIG C_FIG Although ligand-activated GPCRs induce both G-protein and {beta}-arrestin dependent signaling, gaining precise spatio-temporal control of {beta}-arrestin signaling has proven elusive. Here we describe a platform for specifically activating {beta}-arrestin-dependent signaling in situ. The platform, which we have dubbed \"GA-PAIR\" (GPCR/{beta}-Arrestin -Plant protein and Abscisic acid Induced Recruitment), can be controlled by the inert phytochemical S-(+)-abscisic acid (ABA). ABA induces interaction between ABI1 (ABA Insensitive 1) and PYL1 (Pyrabactin Resistance (PYR) 1-Like), two plant proteins with no mammalian counterparts. We fused ABI to the engineered human muscarinic M3 G protein-coupled receptor (hM3Dq) and PYL1 to {beta}-arrestin2. Addition of ABA induced rapid and nearly complete translocation of the PYL-{beta}-arrestin fusion protein and, importantly, induced both ERK and Akt signaling. Photo-uncaging a new photo-caged ABA analogue allowed us to gain relatively precise spatio-temporal control over {beta}-arrestin translocation. Because GA-PAIR facilitates the exclusive activation of endogenous {beta}-arrestin signaling pathways in the absence of a GPCR ligand or G protein, the GA-PAIR system will facilitate deconvoluting GPCR signaling in situ.

synthetic biology