يعرض 1 - 18 نتائج من 18 نتيجة بحث عن '"Kendrick, M. L."', وقت الاستعلام: 0.89s تنقيح النتائج
  1. 1
    Academic Journal

    المساهمون: Fogliati, A., Crippa, S., Marchegiani, G., Belfiori, G., Pea, A., Graham, R. P., Fiorentini, G., Tomasoni, G., Aleotti, F., Kendrick, M. L., Salvia, R., Falconi, M., Truty, M. J.

    Relation: info:eu-repo/semantics/altIdentifier/pmid/38702207; info:eu-repo/semantics/altIdentifier/wos/WOS:001271581400001; volume:24; issue:5; firstpage:747; lastpage:752; numberofpages:6; journal:PANCREATOLOGY; https://hdl.handle.net/20.500.11768/160418; https://www.sciencedirect.com/science/article/pii/S142439032400108X?via=ihub

  2. 2
    Academic Journal
  3. 3
    Academic Journal

    المساهمون: Nishino, H., Zimmitti, G., Ohtsuka, T., Abu Hilal, M., Goh, B. K. P., Kooby, D. A., Nakamura, Y., Shrikhande, S. V., Yoon, Y. -S., Ban, D., Nagakawa, Y., Nakata, K., Endo, I., Tsuchida, A., Nakamura, M., Asbun, H. J., Boggi, U., He, J., Honda, G., Jang, J. -Y., Kang, C. M., Kendrick, M. L., Liu, R., Palanivelu, C., Takaori, K., Tang, C. -N., Wang, S. -E., Wolfgang, C. L., Yiengpruksawan, A., Berardi, G., Higuchi, R., Ikenaga, N., Kozono, S., Watanabe, Y., Garbarino, G. M., Ishikawa, Y., Maekawa, A., Murase, Y., Sakuma, L., Yamamoto, M.

    Relation: info:eu-repo/semantics/altIdentifier/pmid/33527704; info:eu-repo/semantics/altIdentifier/wos/WOS:000618891100001; volume:29; issue:1; firstpage:136; lastpage:150; numberofpages:15; journal:JOURNAL OF HEPATO-BILIARY-PANCREATIC SCIENCES; https://hdl.handle.net/11573/1682191; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85100976252

  4. 4
    Academic Journal

    المساهمون: Nakata, K., Higuchi, R., Ikenaga, N., Sakuma, L., Ban, D., Nagakawa, Y., Ohtsuka, T., Asbun, H. J., Boggi, U., Tang, C. -N., Wolfgang, C. L., Nishino, H., Endo, I., Tsuchida, A., Nakamura, M., Hilal, M. A., Goh, B. K. P., He, J., Honda, G., Jang, J. -Y., Kang, C. M., Kendrick, M. L., Kooby, D. A., Liu, R., Nakamura, Y., Palanivelu, C., Shrikhande, S. V., Takaori, K., Wang, S. -E., Yiengpruksawan, A., Yoon, Y. -S., Berardi, G., Kozono, S., Watanabe, Y., Garbarino, G. M., Ishikawa, Y., Maekawa, A., Murase, Y., Zimmitti, G., Yamamoto, M.

    Relation: info:eu-repo/semantics/altIdentifier/pmid/33533158; info:eu-repo/semantics/altIdentifier/wos/WOS:000627548200001; volume:29; issue:1; firstpage:99; lastpage:113; numberofpages:15; journal:JOURNAL OF HEPATO-BILIARY-PANCREATIC SCIENCES; http://hdl.handle.net/11568/1142014; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85102282399

  5. 5
    Academic Journal

    المساهمون: Nagakawa, Y., Nakata, K., Nishino, H., Ohtsuka, T., Ban, D., Asbun, H. J., Boggi, U., He, J., Kendrick, M. L., Palanivelu, C., Liu, R., Wang, S. -E., Tang, C. -N., Takaori, K., Abu Hilal, M., Goh, B. K. P., Honda, G., Jang, J. -Y., Kang, C. M., Kooby, D. A., Nakamura, Y., Shrikhande, S. V., Wolfgang, C. L., Yiengpruksawan, A., Yoon, Y. -S., Watanabe, Y., Kozono, S., Ciria, R., Berardi, G., Garbarino, G. M., Higuchi, R., Ikenaga, N., Ishikawa, Y., Maekawa, A., Murase, Y., Zimmitti, G., Kunzler, F., Wang, Z. -Z., Sakuma, L., Takishita, C., Osakabe, H., Endo, I., Tanaka, M., Yamaue, H., Tanabe, M., Wakabayashi, G., Tsuchida, A., Nakamura, M.

    Relation: info:eu-repo/semantics/altIdentifier/pmid/34783176; info:eu-repo/semantics/altIdentifier/wos/WOS:000725917000001; journal:JOURNAL OF HEPATO-BILIARY-PANCREATIC SCIENCES; http://hdl.handle.net/11573/1601281; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85120472637

  6. 6
    Academic Journal

    المساهمون: Ban, D., Nishino, H., Ohtsuka, T., Nagakawa, Y., Abu Hilal, M., Asbun, H. J., Boggi, U., Goh, B. K. P., He, J., Honda, G., Jang, J. -Y., Kang, C. M., Kendrick, M. L., Kooby, D. A., Liu, R., Nakamura, Y., Nakata, K., Palanivelu, C., Shrikhande, S. V., Takaori, K., Tang, C. -N., Wang, S. -E., Wolfgang, C. L., Yiengpruksawan, A., Yoon, Y. -S., Ciria, R., Berardi, G., Garbarino, G. M., Higuchi, R., Ikenaga, N., Ishikawa, Y., Kozono, S., Maekawa, A., Murase, Y., Watanabe, Y., Zimmitti, G., Kunzler, F., Wang, Z. -Z., Sakuma, L., Osakabe, H., Takishita, C., Endo, I., Tanaka, M., Yamaue, H., Tanabe, M., Wakabayashi, G., Tsuchida, A., Nakamura, M.

    Relation: info:eu-repo/semantics/altIdentifier/pmid/34719123; info:eu-repo/semantics/altIdentifier/wos/WOS:000723000700001; firstpage:1; lastpage:13; numberofpages:13; journal:JOURNAL OF HEPATO-BILIARY-PANCREATIC SCIENCES; http://hdl.handle.net/11573/1601279; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85120363013

  7. 7
    Academic Journal

    المساهمون: Nakamura, M., Wakabayashi, G., Tsuchida, A., Nagakawa, Y., Abe, Y., Abu Hilal, M., Alconchel, F., Akahoshi, K., Aoki, T., Ariizumi, S., Asbun, H. J., Ban, D., Benedetti Cacciaguerra, A., Berardi, G., Boggi, U., Chan, A. C. Y., Chanwat, R., Chen, K. -H., Chen, Y., Cherqui, D., Cheung, T. T., Ciria, R., Duran, M., Endo, I., Fuks, D., Garbarino, G. M., Garcia Vazquez, A., Geller, D. A., Goh, B. K. P., Golse, N., Gotohda, N., Han, H. -S., Hasegawa, K., Hatano, E., He, J., Higuchi, R., Honda, G., Ikenaga, N., Ishikawa, Y., Iwashita, Y., Itano, O., Jang, J. -Y., Kaneko, H., Kang, C. M., Kato, Y., Kendrick, M. L., Kim, J. H., Kooby, D. A., Kozono, S., Liu, R., Lopez-Ben, S., Maekawa, A., Miyasaka, Y., Monden, K., Mori, Y., Morimoto, M., Murase, Y., Nakamura, Y., Nakata, K., Nishino, H., Ogiso, S., Ohtsuka, T., Osakabe, H., Palanivelu, C., Rotellar, F., Sakamoto, Y., Sakuma, L., Shirata, C., Shrikhande, S. V., Sugioka, A., Takaori, K., Takishita, C., Tanabe, M., Tang, C. -N., Tomassini, F., Urade, T., Wakabayashi, T., Wang, S. -E., Watanabe, Y., Wolfgang, C. L., Yamamoto, M., Yiengpruksawan, A., Yoon, Y. -S., Yoshizumi, T., Zimmitt, G.

    Relation: info:eu-repo/semantics/altIdentifier/pmid/33319505; info:eu-repo/semantics/altIdentifier/wos/WOS:000603514300001; journal:JOURNAL OF HEPATO-BILIARY-PANCREATIC SCIENCES; http://hdl.handle.net/11573/1575390; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85098516570

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  12. 12
    Academic Journal

    وصف الملف: application/pdf

    Relation: Grover, M.; Bernard, C. E.; Pasricha, P. J.; Parkman, H. P.; Gibbons, S. J.; Tonascia, J.; Koch, K. L.; McCallum, R. W.; Sarosiek, I.; Hasler, W. L.; Nguyen, L. A. B.; Abell, T. L.; Snape, W. J.; Kendrick, M. L.; Kellogg, T. A.; McKenzie, T. J.; Hamilton, F. A.; Farrugia, G. (2017). "Diabetic and idiopathic gastroparesis is associated with loss of CD206‐positive macrophages in the gastric antrum." Neurogastroenterology & Motility 29(6): n/a-n/a.; https://hdl.handle.net/2027.42/137212; Neurogastroenterology & Motility; Horvath VJ, Vittal H, Lorincz A, et al. Reduced stem cell factor links smooth myopathy and loss of interstitial cells of Cajal in murine diabetic gastroparesis. Gastroenterology. 2006; 130: 759 – 770.; Grover M, Farrugia G, Lurken MS, et al. Cellular changes in diabetic and idiopathic gastroparesis. Gastroenterology. 2011; 140: 1575 – 1585 e8.; Faussone‐Pellegrini MS, Grover M, Pasricha PJ, et al. Ultrastructural differences between diabetic and idiopathic gastroparesis. J Cell Mol Med. 2012; 16: 1573 – 1581.; Battaglia E, Bassotti G, Bellone G, et al. Loss of interstitial cells of Cajal network in severe idiopathic gastroparesis. World J Gastroenterol. 2006; 12: 6172 – 6177.; Pasricha PJ, Pehlivanov ND, Gomez G, Vittal H, Lurken MS, Farrugia G. Changes in the gastric enteric nervous system and muscle: a case report on two patients with diabetic gastroparesis. BMC Gastroenterol. 2008; 8: 21.; Iwasaki H, Kajimura M, Osawa S, et al. A deficiency of gastric interstitial cells of Cajal accompanied by decreased expression of neuronal nitric oxide synthase and substance P in patients with type 2 diabetes mellitus. J Gastroenterol. 2006; 41: 1076 – 1087.; Choi KM, Kashyap PC, Dutta N, et al. CD206‐positive M2 macrophages that express heme oxygenase‐1 protect against diabetic gastroparesis in mice. Gastroenterology. 2010; 138: 2399 – 2409, 409 e1.; Cipriani G, Gibbons SJ, Verhulst PJ, et al. Diabetic Csf1op/op mice lacking macrophages are protected against the development of delayed gastric emptying. Cell Mol Gastroenterol Hepatol. 2016; 2: 40 – 47.; Neshatian L, Gibbons SJ, Farrugia G. Macrophages in diabetic gastroparesis–the missing link? Neurogastroenterol Motil. 2015; 27: 7 – 18.; Bernard CE, Gibbons SJ, Mann IS, et al. Association of low numbers of CD206‐positive cells with loss of ICC in the gastric body of patients with diabetic gastroparesis. Neurogastroenterol Motil. 2014; 26: 1275 – 1284.; Thumshirn M, Bruninga K, Camilleri M. Simplifying the evaluation of postprandial antral motor function in patients with suspected gastroparesis. Am J Gastroenterol. 1997; 92: 1496 – 1500.; Kawagishi T, Nishizawa Y, Okuno Y, et al. Antroduodenal motility and transpyloric fluid movement in patients with diabetes studied using duplex sonography. Gastroenterology. 1994; 107: 403 – 409.; Fraser RJ, Horowitz M, Maddox AF, Dent J. Postprandial antropyloroduodenal motility and gastric emptying in gastroparesis–effects of cisapride. Gut. 1994; 35: 172 – 178.; Ordog T, Ward SM, Sanders KM. Interstitial cells of Cajal generate electrical slow waves in the murine stomach. J Physiol. 1999; 518: 257 – 269.; Forrest AS, Ordog T, Sanders KM. Neural regulation of slow‐wave frequency in the murine gastric antrum. Am J Physiol Gastrointest Liver Physiol. 2006; 290: G486 – G495.; Zhang CM, Huang X, Lu HL, et al. Up‐regulation of the Ang II/AT1 receptor may compensate for the loss of gastric antrum ICC via the PI3k/Akt signaling pathway in STZ‐induced diabetic mice. Mol Cell Endocrinol. 2016; 426: 77 – 86.; Wang XY, Huizinga JD, Diamond J, Liu LW. Loss of intramuscular and submuscular interstitial cells of Cajal and associated enteric nerves is related to decreased gastric emptying in streptozotocin‐induced diabetes. Neurogastroenterol Motil. 2009; 21: 1095 – e92.; Abell TL, Camilleri M, Donohoe K, et al. Consensus recommendations for gastric emptying scintigraphy: a joint report of the American Neurogastroenterology and Motility Society and the Society of Nuclear Medicine. Am J Gastroenterol. 2008; 103: 753 – 763.; Harberson J, Thomas RM, Harbison SP, Parkman HP. Gastric neuromuscular pathology in gastroparesis: analysis of full‐thickness antral biopsies. Dig Dis Sci. 2010; 55: 359 – 370.; Othman MO, Davis B, Saroseik I, Torabi A, McCallum RW. EUS‐guided FNA biopsy of the muscularis propria of the antrum in patients with gastroparesis is feasible and safe. Gastrointest Endosc. 2016; 83: 327 – 333.; Lin Z, Sarosiek I, Forster J, Damjanov I, Hou Q, McCallum RW. Association of the status of interstitial cells of Cajal and electrogastrogram parameters, gastric emptying and symptoms in patients with gastroparesis. Neurogastroenterol Motil. 2010; 22: 56 – 61 e10.; Ordog T, Takayama I, Cheung WK, Ward SM, Sanders KM. Remodeling of networks of interstitial cells of Cajal in a murine model of diabetic gastroparesis. Diabetes. 2000; 49: 1731 – 1739.; Long QL, Fang DC, Shi HT, Luo YH. Gastro‐electric dysrhythm and lack of gastric interstitial cells of Cajal. World J Gastroenterol. 2004; 10: 1227 – 1230.; Grover M, Bernard CE, Pasricha PJ, et al. Clinical‐histological associations in gastroparesis: results from the Gastroparesis Clinical Research Consortium. Neurogastroenterol Motil. 2012; 24: 531 – 539.; Cipriani G, Gibbons SJ, Kashyap PC, Farrugia G. Intrinsic gastrointestinal macrophages: their phenotype and role in gastrointestinal motility. Cell Mol Gastroenterol Hepatol. 2016; 2: 120 – 130 e1.; Bain CC, Scott CL, Uronen‐Hansson H, et al. Resident and pro‐inflammatory macrophages in the colon represent alternative context‐dependent fates of the same Ly6Chi monocyte precursors. Mucosal Immunol. 2013; 6: 498 – 510.; Tamoutounour S, Henri S, Lelouard H, et al. CD64 distinguishes macrophages from dendritic cells in the gut and reveals the Th1‐inducing role of mesenteric lymph node macrophages during colitis. Eur J Immunol. 2012; 42: 3150 – 3166.; Raes G, Van den Bergh R, De Baetselier P, et al. Arginase‐1 and Ym1 are markers for murine, but not human, alternatively activated myeloid cells. J Immunol. 2005; 174: 6561; author reply ‐2.; Gross TJ, Kremens K, Powers LS, et al. Epigenetic silencing of the human NOS2 gene: rethinking the role of nitric oxide in human macrophage inflammatory responses. J Immunol. 2014; 192: 2326 – 2338.; Choi KM, Gibbons SJ, Nguyen TV, et al. Heme oxygenase‐1 protects interstitial cells of Cajal from oxidative stress and reverses diabetic gastroparesis. Gastroenterology. 2008; 135: 2055 – 2064, 64 e1‐2.; Kashyap PC, Choi KM, Dutta N, et al. Carbon monoxide reverses diabetic gastroparesis in NOD mice. Am J Physiol Gastrointest Liver Physiol. 2010; 298: G1013 – G1019.; Choi KM, Sha L, Verhulst P‐J, et al. Treatment with IL‐10 reverses gastroparesis in diabetic NOD/Shiltj mice. Gastroenterology. 2012; 142: S‐66.; Deng B, Wehling‐Henricks M, Villalta SA, Wang Y, Tidball JG. IL‐10 triggers changes in macrophage phenotype that promote muscle growth and regeneration. J Immunol. 2012; 189: 3669 – 3680.; Asadullah K, Sterry W, Volk HD. Interleukin‐10 therapy–review of a new approach. Pharmacol Rev. 2003; 55: 241 – 269.

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    وصف الملف: application/pdf

    Relation: Bernard, C. E.; Gibbons, S. J.; Mann, I. S.; Froschauer, L.; Parkman, H. P.; Harbison, S.; Abell, T. L.; Snape, W. J.; Hasler, W. L.; McCallum, R. W.; Sarosiek, I.; Nguyen, L. A. B.; Koch, K. L.; Tonascia, J.; Hamilton, F. A.; Kendrick, M. L.; Shen, K. R.; Pasricha, P. J.; Farrugia, G. (2014). "Association of low numbers of CD 206‐positive cells with loss of ICC in the gastric body of patients with diabetic gastroparesis." Neurogastroenterology & Motility 26(9): 1275-1284.; http://hdl.handle.net/2027.42/108285; Neurogastroenterology & Motility; Cancello R, Henegar C, Viguerie N, Taleb S, Poitou C, Rouault C, Coupaye M, Pelloux V, et al. Reduction of macrophage infiltration and chemoattractant gene expression changes in white adipose tissue of morbidly obese subjects after surgery‐induced weight loss. Diabetes 2005; 54: 2277 – 86.; Faussone‐Pellegrini MS, Grover M, Pasricha PJ, Bernard CE, Lurken MS, Smyrk TC, Parkman HP, Abell TL, et al. Ultrastructural differences between diabetic and idiopathic gastroparesis. J Cell Mol Med 2012; 16: 1573 – 81.; Grover M, Bernard CE, Pasricha PJ, Lurken MS, Faussone‐Pellegrini MS, Smyrk TC, Parkman HP, Abell TL, et al. Clinical‐histological associations in gastroparesis: results from the Gastroparesis Clinical Research Consortium. Neurogastroenterol Motil 2012; 24: 531 – 9, e249.; Austyn JM, Gordon S. F4/80, a monoclonal antibody directed specifically against the mouse macrophage. Eur J Immunol 1981; 11: 805 – 15.; Mikkelsen HB. Interstitial cells of Cajal, macrophages and mast cells in the gut musculature: morphology, distribution, spatial and possible functional interactions. J Cell Mol Med 2010; 14: 818 – 32.; Mosser DM, Edwards JP. Exploring the full spectrum of macrophage activation. Nat Rev Immunol 2008; 8: 958 – 69.; Gordon S. Alternative activation of macrophages. Nat Rev Immunol 2003; 3: 23 – 35.; Albina JE. On the expression of nitric oxide synthase by human macrophages. Why no NO? J Leukoc Biol 1995; 58: 643 – 9.; Gross TJ, Kremens K, Powers LS, Brink B, Knutson T, Domann FE, Philibert RA, Milhem MM, et al. Epigenetic silencing of the human NOS2 gene: rethinking the role of nitric oxide in human macrophage inflammatory responses. J Immunol 2014; 192: 2326 – 38.; Micklem K, Rigney E, Cordell J, Simmons D, Stross P, Turley H, Seed B, Mason D. A human macrophage‐associated antigen (CD68) detected by six different monoclonal antibodies. Br J Haematol 1989; 73: 6 – 11.; Kunisch E, Fuhrmann R, Roth A, Winter R, Lungershausen W, Kinne RW. Macrophage specificity of three anti‐CD68 monoclonal antibodies (KP1, EBM11, and PGM1) widely used for immunohistochemistry and flow cytometry. Ann Rheum Dis 2004; 63: 774 – 84.; Adams CW, Poston RN. Macrophage histology in paraffin‐embedded multiple sclerosis plaques is demonstrated by the monoclonal pan‐macrophage marker HAM‐56: correlation with chronicity of the lesion. Acta Neuropathol 1990; 80: 208 – 11.; Gown AM, Tsukada T, Ross R. Human atherosclerosis. II. Immunocytochemical analysis of the cellular composition of human atherosclerotic lesions. Am J Pathol 1986; 125: 191 – 207.; Hamann J, Koning N, Pouwels W, Ulfman LH, van Eijk M, Stacey M, Lin HH, Gordon S, et al. EMR1, the human homolog of F4/80, is an eosinophil‐specific receptor. Eur J Immunol 2007; 37: 2797 – 802.; Kalff JC, Schwarz NT, Walgenbach KJ, Schraut WH, Bauer AJ. Leukocytes of the intestinal muscularis: their phenotype and isolation. J Leukoc Biol 1998; 63: 683 – 91.; Mikkelsen HB, Rumessen JJ. Characterization of macrophage‐like cells in the external layers of human small and large intestine. Cell Tissue Res 1992; 270: 273 – 9.; Kalff JC, Turler A, Schwarz NT, Schraut WH, Lee KK, Tweardy DJ, Billiar TR, Simmons RL, et al. Intra‐abdominal activation of a local inflammatory response within the human muscularis externa during laparotomy. Ann Surg 2003; 237: 301 – 15.; Rugtveit J, Brandtzaeg P, Halstensen TS, Fausa O, Scott H. Increased macrophage subset in inflammatory bowel disease: apparent recruitment from peripheral blood monocytes. Gut 1994; 35: 669 – 74.; He CL, Soffer EE, Ferris CD, Walsh RM, Szurszewski JH, Farrugia G. Loss of interstitial cells of cajal and inhibitory innervation in insulin‐dependent diabetes. Gastroenterology 2001; 121: 427 – 34.; Vittal H, Farrugia G, Gomez G, Pasricha PJ. Mechanisms of disease: the pathological basis of gastroparesis–a review of experimental and clinical studies. Nat Clin Pract Gastroenterol Hepatol 2007; 4: 336 – 46.; Battaglia E, Bassotti G, Bellone G, Dughera L, Serra AM, Chiusa L, Repici A, Mioli P, et al. Loss of interstitial cells of Cajal network in severe idiopathic gastroparesis. World J Gastroenterol 2006; 12: 6172 – 7.; Forster J, Damjanov I, Lin Z, Sarosiek I, Wetzel P, McCallum RW. Absence of the interstitial cells of Cajal in patients with gastroparesis and correlation with clinical findings. J Gastrointest Surg 2005; 9: 102 – 8.; Harberson J, Thomas RM, Harbison SP, Parkman HP. Gastric neuromuscular pathology in gastroparesis: analysis of full‐thickness antral biopsies. Dig Dis Sci 2010; 55: 359 – 70.; Iwasaki H, Kajimura M, Osawa S, Kanaoka S, Furuta T, Ikuma M, Hishida A. A deficiency of gastric interstitial cells of Cajal accompanied by decreased expression of neuronal nitric oxide synthase and substance P in patients with type 2 diabetes mellitus. J Gastroenterol 2006; 41: 1076 – 87.; Pasricha PJ, Pehlivanov ND, Gomez G, Vittal H, Lurken MS, Farrugia G. Changes in the gastric enteric nervous system and muscle: a case report on two patients with diabetic gastroparesis. BMC Gastroenterol 2008; 8: 21.; Zarate N, Mearin F, Wang XY, Hewlett B, Huizinga JD, Malagelada JR. Severe idiopathic gastroparesis due to neuronal and interstitial cells of Cajal degeneration: pathological findings and management. Gut 2003; 52: 966 – 70.; McKnight AJ, Macfarlane AJ, Dri P, Turley L, Willis AC, Gordon S. Molecular cloning of F4/80, a murine macrophage‐restricted cell surface glycoprotein with homology to the G‐protein‐linked transmembrane 7 hormone receptor family. J Biol Chem 1996; 271: 486 – 9.; Baud V, Chissoe SL, Viegas‐Pequignot E, Diriong S, N'Guyen VC, Roe BA, Lipinski M. EMR1, an unusual member in the family of hormone receptors with seven transmembrane segments. Genomics 1995; 26: 334 – 44.; Khazen W, M'Bika JP, Tomkiewicz C, Benelli C, Chany C, Achour A, Forest C. Expression of macrophage‐selective markers in human and rodent adipocytes. FEBS Lett 2005; 579: 5631 – 4.; Gough PJ, Gordon S, Greaves DR. The use of human CD68 transcriptional regulatory sequences to direct high‐level expression of class A scavenger receptor in macrophages in vitro and in vivo. Immunology 2001; 103: 351 – 61.; Fowler LJ, Maygarden SJ, Novotny DB. Human alveolar macrophage‐56 and carcinoembryonic antigen monoclonal antibodies in the differential diagnosis between primary ovarian and metastatic gastrointestinal carcinomas. Hum Pathol 1994; 25: 666 – 70.; Beranek JT. CD68 is not a macrophage‐specific antigen. Ann Rheum Dis 2005; 64: 342 – 3; author reply 3‐4.; Gottfried E, Kunz‐Schughart LA, Weber A, Rehli M, Peuker A, Muller A, Kastenberger M, Brockhoff G, et al. Expression of CD68 in non‐myeloid cell types. Scand J Immunol 2008; 67: 453 – 63.; Villalta SA, Nguyen HX, Deng B, Gotoh T, Tidball JG. Shifts in macrophage phenotypes and macrophage competition for arginine metabolism affect the severity of muscle pathology in muscular dystrophy. Hum Mol Genet 2009; 18: 482 – 96.; Denis M. Human monocytes/macrophages: NO or no NO? J Leukoc Biol 1994; 55: 682 – 4.; Baynes JW. Role of oxidative stress in development of complications in diabetes. Diabetes 1991; 40: 405 – 12.; Cummings TJ, Hulette CM, Bigner SH, Riggins GJ, McLendon RE. Ham56‐immunoreactive macrophages in untreated infiltrating gliomas. Arch Pathol Lab Med 2001; 125: 637 – 41.; Camilleri M, Parkman HP, Shafi MA, Abell TL, Gerson L. Clinical guideline: management of gastroparesis. Am J Gastroenterol 2013; 108: 18 – 37; quiz 8.; Wang YR, Fisher RS, Parkman HP. Gastroparesis‐related hospitalizations in the United States: trends, characteristics, and outcomes, 1995‐2004. Am J Gastroenterol 2008; 103: 313 – 22.; Jung HK, Choung RS, Locke GR 3rd, Schleck CD, Zinsmeister AR, Szarka LA, Mullan B, Talley NJ. The incidence, prevalence, and outcomes of patients with gastroparesis in Olmsted County, Minnesota, from 1996 to 2006. Gastroenterology 2009; 136: 1225 – 33.; Bielefeldt K. Gastroparesis: concepts, controversies, and challenges. Scientifica (Cairo) 2012; 2012: 424802.; Parkman HP, Hasler WL, Fisher RS. American Gastroenterological Association technical review on the diagnosis and treatment of gastroparesis. Gastroenterology 2004; 127: 1592 – 622.; Hasler WL. Gastroparesis–current concepts and considerations. Medscape J Med 2008; 10: 16.; Spangeus A, Suhr O, El‐Salhy M. Diabetic state affects the innervation of gut in an animal model of human type 1 diabetes. Histol Histopathol 2000; 15: 739 – 44.; Wang XY, Huizinga JD, Diamond J, Liu LW. Loss of intramuscular and submuscular interstitial cells of Cajal and associated enteric nerves is related to decreased gastric emptying in streptozotocin‐induced diabetes. Neurogastroenterol Motil 2009; 21: 1095 – e92.; Ordog T, Takayama I, Cheung WK, Ward SM, Sanders KM. Remodeling of networks of interstitial cells of Cajal in a murine model of diabetic gastroparesis. Diabetes 2000; 49: 1731 – 9.; Horvath VJ, Vittal H, Lorincz A, Chen H, Almeida‐Porada G, Redelman D, Ordog T. Reduced stem cell factor links smooth myopathy and loss of interstitial cells of cajal in murine diabetic gastroparesis. Gastroenterology 2006; 130: 759 – 70.; Choi KM, Gibbons SJ, Nguyen TV, Stoltz GJ, Lurken MS, Ordog T, Szurszewski JH, Farrugia G. Heme oxygenase‐1 protects interstitial cells of Cajal from oxidative stress and reverses diabetic gastroparesis. Gastroenterology 2008; 135: 2055 – 64, 64 e1‐2.; Choi KM, Kashyap PC, Dutta N, Stoltz GJ, Ordog T, Shea Donohue T, Bauer AJ, Linden DR, et al. CD206‐positive M2 macrophages that express heme oxygenase‐1 protect against diabetic gastroparesis in mice. Gastroenterology 2010; 138: 2399 – 409, 409 e1.; Grover M, Farrugia G, Lurken MS, Bernard CE, Faussone‐Pellegrini MS, Smyrk TC, Parkman HP, Abell TL, et al. Cellular changes in diabetic and idiopathic gastroparesis. Gastroenterology 2011; 140: 1575 – 85 e8.

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