42. Ozawa J, Kurose T, Kawamata S, Yamaoka K. Morphological changes in hindlimb muscles elicited by adjuvant-induced arthritis of the rat knee. Scand J Med Sci Sports 2009 in press.
41. Yamaoka K, Inoue M, Miyazaki K, Hirama M, Kondo C, Kinoshita E, et al. Synthetic ciguatoxins selectively activate NAv1.8-derived chimeric sodium channels expressed in HEK293 cells. J Biol Chem 2009 (12):7597-605.
40. Yokote S, Setoguchi R, Shimizu E, Mishima N, Kawahara K, Kuniyasu A, et al. A synthetic approach to develop peptide inhibitors selective for brain-type sodium channels on the basis of pompilidotoxin structure. Heterocycles 2009. 79 (1):925-933.
39. Maruta S, Yamaoka K, Yotsu-Yamashita M. Two critical residues in p-loop regions of puffer fish Na+ channels on TTX sensitivity. Toxicon, 2008. 51 (3): 381-387.
38 Kawahara, Y, et al., Novel Electrical Stimulation Sets the Cultured Myoblast Contractile Function to \\\\\\\"ON\\\\\\\" Pathobiol, 2006. 73 (6): 288-94.
37 Yamaoka, K., S.M. Vogel, and I. Seyama, Na+ channel pharmacology and molecular mechanisms of gating. Curr Pharm Des, 2006. 12(4): p. 429-42.
36 Yamaoka, K., et al., A quantitative and comparative study of the effects of a synthetic ciguatoxin CTX3C on the kinetic properties of voltage-dependent sodium channels. Br J Pharmacol, 2004. 142(5): p. 879-89.
35 Yamaoka, K. and M. Kameyama, Regulation of L-type Ca2+ channels in the heart: overview of recent advances. Mol Cell Biochem, 2003. 253(1-2): p. 3-13.
34 Maejima, H., et al., Distinct sites regulating grayanotoxin binding and unbinding to D4S6 of Na(v)1.4 sodium channel as revealed by improved estimation of toxin sensitivity. J Biol Chem, 2003. 278(11): p. 9464-71.
33 山岡 薫, 木下 英司, and 瀬山 一正, 生物毒が明らかにするNa+チャネル開閉のメカニズム. 生体の科学, 2002. 53(4): p. 304-311.
32 Yamaoka, K., et al., Temperature-sensitive intracellular Mg2+ block of L-type Ca2+ channels in cardiac myocytes. Am J Physiol Heart Circ Physiol, 2002. 282(3): p. H1092-101.
31 Maejima, H., et al., Structural determinants for the action of grayanotoxin in D1 S4-S5 and D4 S4-S5 intracellular linkers of sodium channel alpha-subunits. Biochem Biophys Res Commun, 2002. 295(2): p. 452-7.
30 Kawagoe, H., et al., Molecular basis for exaggerated sensitivity to mexiletine in the cardiac isoform of the fast Na channel. FEBS Lett, 2002. 513(2-3): p. 235-41.
29 Yuki, T., et al., State-dependent action of grayanotoxin I on Na(+) channels in frog ventricular myocytes. J Physiol, 2001. 534(Pt 3): p. 777-90.
28 Yakehiro, M., et al., Novel mechanism of blocking axonal Na(+) channels by three macrocyclic polyamine analogues and two spider toxins. Br J Pharmacol, 2001. 132(1): p. 63-72.
27 Seyama, I., K. Yamaoka, and M. Yakehiro, グラヤノトキシン(GTX)と膜電位依存性Na+チャネル. BIO Clinica, 2001. 16((1)): p. 54-58.
26 Kinoshita, E., et al., Novel wasp toxin discriminates between neuronal and cardiac sodium channels. Mol Pharmacol, 2001. 59(6): p. 1457-63.
25 Kimura, T., et al., Novel site on sodium channel alpha-subunit responsible for the differential sensitivity of grayanotoxin in skeletal and cardiac muscle. Mol Pharmacol, 2001. 60(4): p. 865-72.
24 Yamaoka, K., et al., Effect of sulfhydryl reagents on the regulatory system of the L-type Ca channel in frog ventricular myocytes. Pflugers Arch, 2000. 440(2): p. 207-15.
23 Yakehiro, M., et al., An analysis of the variations in potency of grayanotoxin analogs in modifying frog sodium channels of differing subtypes. Mol Pharmacol, 2000. 58(4): p. 692-700.
22 Kimura, T., et al., On site of action of grayanotoxin in domain 4 segment 6 of rat skeletal muscle sodium channel. FEBS Lett, 2000. 465(1): p. 18-22.
21 Yuki, T., K. Yamaoka, and I. Seyama, Regulation of L- and N-types of Ca2+ channels by intracellular ATP4- in frog dorsal root ganglion neurons. Pflugers Arch, 1999. 438(2): p. 117-24.
20 Ishii, H., et al., Point-mutations related to the loss of batrachotoxin binding abolish the grayanotoxin effect in Na(+) channel isoforms. Jpn J Physiol, 1999. 49(5): p. 457-61.
19 Yamaoka, K. and I. Seyama, Phosphorylation modulates L-type Ca channels in frog ventricular myocytes by changes in sensitivity to Mg2+ block. Pflugers Arch, 1998. 435(3): p. 329-37.
18 Furue, T., et al., Characteristics of two slow inactivation mechanisms and their influence on the sodium channel activity of frog ventricular myocytes. Pflugers Arch, 1998. 436(5): p. 631-8.
17 Yamaoka, K. and I. Seyama, Modulation of Ca2+ channels by intracellular Mg2+ ions and GTP in frog ventricular myocytes. Pflugers Arch, 1996. 432(3): p. 433-8.
16 Yamaoka, K. and I. Seyama, Regulation of Ca channel by intracellular Ca2+ and Mg2+ in frog ventricular cells. Pflugers Arch, 1996. 431(3): p. 305-17.
15 Munemori, M., K. Yamaoka, and I. Seyama, Identification of ATP-sensitive potassium channel in frog ventricular myocytes. J Membr Biol, 1996. 154(1): p. 45-51.
14 Yusuf, I., et al., Block of sodium channels by tyramine and its analogue (N-feruloyl tyramine) in frog ventricular myocytes. Jpn J Physiol, 1992. 42(2): p. 179-91.
13 Herve, J.C., et al., Temperature dependence of electrophysiological properties of guinea pig and ground squirrel myocytes. Am J Physiol, 1992. 263(1 Pt 2): p. R177-84.
12 Smith, T.W., Yamaoka, K., Twist, V. W., Ellory, J. C., Powell, T. and Wang, L. C. H., Membrane transport in isolated cardiac myocytes of ground squirrels: cold sensitivity of pumps and channels., in Living in the Cold II. 1989, Jhon Libbey Eurotext Ltd. p. 177-184.
11 Miyoshi, H., Yamaoka, K. and Seyama I., Characteristics of sodium channel kinetics in the frog ventricular cell., in Current Topics in Antiarrhythmic Agents. 1989, Excerpta Medica Ltd. . p. 15-24
10 Seyama, I. and K. Yamaoka, A study of the electrical characteristics of sodium currents in single ventricular cells of the frog. J Physiol, 1988. 401: p. 257-75.
9 Egan, T.M., et al., On the mechanism of isoprenaline- and forskolin-induced depolarization of single guinea-pig ventricular myocytes. J Physiol, 1988. 400: p. 299-320.
8 Yamaoka, K., Does the maximum upstroke velocity of the action potential (Vmax) represent available sodium conductance in frog ventricular cells? Jpn J Physiol, 1987. 37(4): p. 585-99.
7 土岡由紀子, 松., 網岡英世, 横手祐司, 山岡 薫, 橋本正樹, 岡本光師, 松浦秀夫, 梶山梧朗, 満田広樹, WPW症候群における二重防室結節伝導経路合併についての検討. 心臓, 1986. 18(7): p. 803-810.
6 Yamaoka, K. and I. Seyama, Some properties of Na channel inactivation in isolated ventricular cells of frog, Rana catesbeiana. Jpn Heart J, 1986. 27 Suppl 1: p. 21-30.
5 Tsuchioka Y., Y., K., Hashimoto, M., Yamamoto, M., Sueda, T., Matsuura, H., Kurogane, H., Kajiyama, G., Tateishi, H., Sato, H. & Mitsuda, H., Electrophysiological effects of diphenylhydantoin in patients with sinus node dysfunction. Jpn Heart J, 1986. 27(2): p. 159-166.
4 Seyama, I., Yakehiro, M., and K. Yamaoka, Nakajima, T. and Kimura, E., Mechanisum of the Na channel block with trypargine and guanidyl-side armed cyclam., in Natural products and biological activities. 1986, University of Tokyo Press Tokyo. p. 101-109.
3 土岡由紀子, 藤., 末盛彰一, 佐倉英一郎, 山本正治, 山岡 薫, 末田 隆, 松浦秀夫, 梶山梧朗, 松浦雄一郎, 家族性sick sinus syndromeの一家系. 呼吸と循環, 1985. 33(10): p. 1271-1275.
2 Seyama, I., et al., Is the site of action of grayanotoxin the sodium channel gating of squid axon? Jpn J Physiol, 1985. 35(3): p. 401-10.
1 土岡由紀子, 山.薫., 山本正治, 末田 隆, 金沢郁夫, 湯浅 明, 榎野 新, 松浦秀夫, 鉄 寛之, 立石博信, 滝沢伊津夫, 佐藤 光, 満田広樹, WPW症候群における発作性心房粗動・細動についての検討. 呼吸と循環, 1984. 32(8): p. 829-833.