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Hong, J.-H.

Publications and source records attributed to Hong, J.-H..

2 recordsLinked to original sources

Central role of Prominin-1 in lipid rafts during liver regeneration

Prominin-1 (PROM1), a lipid raft protein, is required for maintaining cancer stem cell properties in hepatocarcinoma cell lines, but its physiological roles in the liver have not been well studied. Here, we investigated the role of PROM1 in lipid rafts with a precise molecular mechanism during liver regeneration. We found that the expression of PROM1 increased during liver regeneration after 2/3 partial hepatectomy (PHx) or CCl4 injection. Interestingly, hepatocyte proliferation and liver regeneration were attenuated in liver-specific Prom1 knockout (Prom1LKO) mice compared to wild-type (Prom1f/f) mice. Detailed mechanistic studies revealed that PROM1 interacted with the interleukin-6 signal transducer glycoprotein 130 (GP130) and confined GP130 to lipid rafts so that STAT3 signaling by IL-6 was effectively activated. Moreover, the overexpression of the glycosylphosphatidylinsositol (GPI)-anchored first extracellular domain of PROM1 (PROM1GPI-EX1), which is a domain that binds to GP130, rescued the proliferation of hepatocytes and liver regeneration in Prom1LKO mice. PROM1 is upregulated in hepatocytes during liver regeneration, and upregulated PROM1 recruits GP130 into lipid rafts and activates the IL6-GP130-STAT3 axis. Thus, we conclude that PROM1 plays an important role in lipid rafts during liver regeneration and might be a promising target for therapeutic applications of liver transplantation.

cell biology↗

A low-cost mouse cage warming system provides improved intra-ischemic and post-ischemic body temperature control &ndash: application for reducing variability in experimental stroke studies

Experimental guidelines have been proposed to improve the rigor and reproducibility of experimental stroke studies in rodents. As brain temperature is a strong determinant of ischemic injury, tight management of brain or body temperature (Tcore) during the experimental protocol is highly recommended. However, little guidance is provided regarding how or for how long temperature support should be provided. We compared a commonly used heat support method (cage on heating pad) with a low-cost custom built warm ambient air cage (WAAC) system. Both heat support systems were evaluated for the middle cerebral artery occlusion (MCAo) model in mice. The WAAC system provided improved temperature control (more normothermic Tcore and less Tcore variation) during the intra-ischemic period (60 min) and post-ischemic period (3 hrs). Neurologic deficit score showed significantly less variance at post-stroke day 1 (PSD1) in WAAC system mice. Mean infarct volume was not statistically different by heat support system, however, standard deviation was 54% lower in the WAAC system group. In summary, we provide a simple low-cost heat support system that provides superior Tcore management in mice during the intra-ischemic and post-ischemic periods, which results in reduced variability of experimental outcomes. HighlightsO_LIWe describe the fabrication of a low-cost mouse cage warming system (warmed ambient air cage; WAAC system) that can be assembled and applied in any stroke laboratory. C_LIO_LIThe WAAC system provides more precise control of post-stroke mouse body temperature compared with traditional heating pad warming system. C_LIO_LIThe more precise control of post-stroke core temperature reduces variability in some experimental measures in more severely injured mice. C_LI

neuroscience↗