Fig. 5 in Karanjin
Fig. 5. Proposed karanjin mediated mechanism: I. Karanjin suppress TNFα production; II. Karanjin inhibits protein tyrosine phosphatase-1β (PTP-1β) which suppresses IRS-1 and activates AMPK and induces GLUT4 translocation; III. Karanjin inhibits degradation of I- κB; IV. Karanjin inhibits NF- κB tran...
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creator | Singh, A. Bhatt, G. Gujre, N. Mitra, S. Swaminathan, R. Limaye, A.M. Rangan, L. |
description | Fig. 5. Proposed karanjin mediated mechanism: I. Karanjin suppress TNFα production; II. Karanjin inhibits protein tyrosine phosphatase-1β (PTP-1β) which suppresses IRS-1 and activates AMPK and induces GLUT4 translocation; III. Karanjin inhibits degradation of I- κB; IV. Karanjin inhibits NF- κB translocation to nucleus; V. Karanjin suppresses ROS; VI. Induces cell cycle arrest, G2/M arrest and increase in subG1 population; VII. Karanjin induce BAX/BCL-2 ratio by inhibiting BCL-2 expression; VIII. Karanjin induce p53 expression; IX. Karanjin induces drug efflux and metabolism. |
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Karanjin suppress TNFα production; II. Karanjin inhibits protein tyrosine phosphatase-1β (PTP-1β) which suppresses IRS-1 and activates AMPK and induces GLUT4 translocation; III. Karanjin inhibits degradation of I- κB; IV. Karanjin inhibits NF- κB translocation to nucleus; V. Karanjin suppresses ROS; VI. Induces cell cycle arrest, G2/M arrest and increase in subG1 population; VII. Karanjin induce BAX/BCL-2 ratio by inhibiting BCL-2 expression; VIII. Karanjin induce p53 expression; IX. 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Proposed karanjin mediated mechanism: I. Karanjin suppress TNFα production; II. Karanjin inhibits protein tyrosine phosphatase-1β (PTP-1β) which suppresses IRS-1 and activates AMPK and induces GLUT4 translocation; III. Karanjin inhibits degradation of I- κB; IV. Karanjin inhibits NF- κB translocation to nucleus; V. Karanjin suppresses ROS; VI. Induces cell cycle arrest, G2/M arrest and increase in subG1 population; VII. Karanjin induce BAX/BCL-2 ratio by inhibiting BCL-2 expression; VIII. Karanjin induce p53 expression; IX. Karanjin induces drug efflux and metabolism.</description><subject>Biodiversity</subject><subject>Taxonomy</subject><fulltext>true</fulltext><rsrctype>image</rsrctype><creationdate>2021</creationdate><recordtype>image</recordtype><sourceid>PQ8</sourceid><recordid>eNpjYBAzNNAzNbIw1K9KzctPydezMLI0NDU34mQQcstM11MwVcjMU_BOLErMy8rM42FgTUvMKU7lhdLcDHpuriHOHropiSWJyZklqfEFRZm5iUWV8YYG8SBD4yGGxkMNNSZZAwDe2i6s</recordid><startdate>20210331</startdate><enddate>20210331</enddate><creator>Singh, A.</creator><creator>Bhatt, G.</creator><creator>Gujre, N.</creator><creator>Mitra, S.</creator><creator>Swaminathan, R.</creator><creator>Limaye, A.M.</creator><creator>Rangan, L.</creator><general>Zenodo</general><scope>DYCCY</scope><scope>PQ8</scope></search><sort><creationdate>20210331</creationdate><title>Fig. 5 in Karanjin</title><author>Singh, A. ; Bhatt, G. ; Gujre, N. ; Mitra, S. ; Swaminathan, R. ; Limaye, A.M. ; Rangan, L.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-datacite_primary_10_5281_zenodo_82915723</frbrgroupid><rsrctype>images</rsrctype><prefilter>images</prefilter><language>eng</language><creationdate>2021</creationdate><topic>Biodiversity</topic><topic>Taxonomy</topic><toplevel>online_resources</toplevel><creatorcontrib>Singh, A.</creatorcontrib><creatorcontrib>Bhatt, G.</creatorcontrib><creatorcontrib>Gujre, N.</creatorcontrib><creatorcontrib>Mitra, S.</creatorcontrib><creatorcontrib>Swaminathan, R.</creatorcontrib><creatorcontrib>Limaye, A.M.</creatorcontrib><creatorcontrib>Rangan, L.</creatorcontrib><collection>DataCite (Open Access)</collection><collection>DataCite</collection></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext_linktorsrc</fulltext></delivery><addata><au>Singh, A.</au><au>Bhatt, G.</au><au>Gujre, N.</au><au>Mitra, S.</au><au>Swaminathan, R.</au><au>Limaye, A.M.</au><au>Rangan, L.</au><format>book</format><genre>unknown</genre><ristype>GEN</ristype><title>Fig. 5 in Karanjin</title><date>2021-03-31</date><risdate>2021</risdate><abstract>Fig. 5. Proposed karanjin mediated mechanism: I. Karanjin suppress TNFα production; II. Karanjin inhibits protein tyrosine phosphatase-1β (PTP-1β) which suppresses IRS-1 and activates AMPK and induces GLUT4 translocation; III. Karanjin inhibits degradation of I- κB; IV. Karanjin inhibits NF- κB translocation to nucleus; V. Karanjin suppresses ROS; VI. Induces cell cycle arrest, G2/M arrest and increase in subG1 population; VII. Karanjin induce BAX/BCL-2 ratio by inhibiting BCL-2 expression; VIII. Karanjin induce p53 expression; IX. Karanjin induces drug efflux and metabolism.</abstract><pub>Zenodo</pub><doi>10.5281/zenodo.8291572</doi><oa>free_for_read</oa></addata></record> |
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title | Fig. 5 in Karanjin |
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