TY - JOUR
T1 - Regulation of a proteinaceous elicitor-induced Ca 2+ influx and production of phytoalexins by a putative voltage-gated cation channel, OsTPC1, in cultured rice cells
AU - Hamada, Haruyasu
AU - Kurusu, Takamitsu
AU - Okuma, Eiji
AU - Nokajima, Hiroshi
AU - Kiyoduka, Masahiro
AU - Koyano, Tomoko
AU - Sugiyama, Yoshimi
AU - Okada, Kazunori
AU - Koga, Jinichiro
AU - Saji, Hikaru
AU - Miyao, Akio
AU - Hirochika, Hirohiko
AU - Yamane, Hisakazu
AU - Murata, Yoshiyuki
AU - Kuchitsu, Kazuyuki
PY - 2012/3/23
Y1 - 2012/3/23
N2 - Pathogen/microbe- or plant-derived signaling molecules (PAMPs/MAMPs/DAMPs) or elicitors induce increases in the cytosolic concentration of free Ca 2+ followed by a series of defense responses including biosynthesis of antimicrobial secondary metabolites called phytoalexins; however, the molecular links and regulatory mechanisms of the phytoalexin biosynthesis remains largely unknown. A putative voltage-gated cation channel, OsTPC1 has been shown to play a critical role in hypersensitive cell death induced by a fungal xylanase protein (TvX) in suspension-cultured rice cells. Here we show that TvX induced a prolonged increase in cytosolic Ca 2+, mainly due to a Ca 2+ influx through the plasma membrane. Membrane fractionation by two-phase partitioning and immunoblot analyses revealed that OsTPC1 is localized predominantly at the plasma membrane. In retrotransposon-insertional Ostpc1 knock-out cell lines harboring a Ca 2+-sensitive photoprotein, aequorin, TvX-induced Ca 2+ elevation was significantly impaired, which was restored by expression of OsTPC1. TvX-induced production of major diterpenoid phytoalexins and the expression of a series of diterpene cyclase genes involved in phytoalexin biosynthesis were also impaired in the Ostpc1 cells. Whole cell patch clamp analyses of OsTPC1 heterologously expressed in HEK293T cells showed its voltage-dependent Ca 2+-permeability. These results suggest that OsTPC1 plays a crucial role in TvX-induced Ca 2+ influx as a plasma membrane Ca 2+-permeable channel consequently required for the regulation of phytoalexin biosynthesis in cultured rice cells.
AB - Pathogen/microbe- or plant-derived signaling molecules (PAMPs/MAMPs/DAMPs) or elicitors induce increases in the cytosolic concentration of free Ca 2+ followed by a series of defense responses including biosynthesis of antimicrobial secondary metabolites called phytoalexins; however, the molecular links and regulatory mechanisms of the phytoalexin biosynthesis remains largely unknown. A putative voltage-gated cation channel, OsTPC1 has been shown to play a critical role in hypersensitive cell death induced by a fungal xylanase protein (TvX) in suspension-cultured rice cells. Here we show that TvX induced a prolonged increase in cytosolic Ca 2+, mainly due to a Ca 2+ influx through the plasma membrane. Membrane fractionation by two-phase partitioning and immunoblot analyses revealed that OsTPC1 is localized predominantly at the plasma membrane. In retrotransposon-insertional Ostpc1 knock-out cell lines harboring a Ca 2+-sensitive photoprotein, aequorin, TvX-induced Ca 2+ elevation was significantly impaired, which was restored by expression of OsTPC1. TvX-induced production of major diterpenoid phytoalexins and the expression of a series of diterpene cyclase genes involved in phytoalexin biosynthesis were also impaired in the Ostpc1 cells. Whole cell patch clamp analyses of OsTPC1 heterologously expressed in HEK293T cells showed its voltage-dependent Ca 2+-permeability. These results suggest that OsTPC1 plays a crucial role in TvX-induced Ca 2+ influx as a plasma membrane Ca 2+-permeable channel consequently required for the regulation of phytoalexin biosynthesis in cultured rice cells.
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U2 - 10.1074/jbc.M111.337659
DO - 10.1074/jbc.M111.337659
M3 - Article
C2 - 22270358
AN - SCOPUS:84858986999
SN - 0021-9258
VL - 287
SP - 9931
EP - 9939
JO - Journal of Biological Chemistry
JF - Journal of Biological Chemistry
IS - 13
ER -