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Expression of the oxygen-regulated protein ORP150 accelerates wound healing by modulating intracellular VEGF transport
Kentaro Ozawa, Toshikazu Kondo, Osamu Hori, Yasuko Kitao, David M. Stern, Wolfgang Eisenmenger, Satoshi Ogawa, Tohru Ohshima
Kentaro Ozawa, Toshikazu Kondo, Osamu Hori, Yasuko Kitao, David M. Stern, Wolfgang Eisenmenger, Satoshi Ogawa, Tohru Ohshima
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Article

Expression of the oxygen-regulated protein ORP150 accelerates wound healing by modulating intracellular VEGF transport

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Abstract

Expression of angiogenic factors such as VEGF under conditions of hypoxia or other kinds of cell stress contributes to neovascularization during wound healing. The inducible endoplasmic reticulum chaperone oxygen-regulated protein 150 (ORP150) is expressed in human wounds along with VEGF. Colocalization of these two molecules was observed in macrophages in the neovasculature, suggesting a role of ORP150 in the promotion of angiogenesis. Local administration of ORP150 sense adenovirus to wounds of diabetic mice, a treatment that efficiently targeted this gene product to the macrophages of wound beds, increased VEGF antigen in wounds and accelerated repair and neovascularization. In cultured human macrophages, inhibition of ORP150 expression caused retention of VEGF antigen within the endoplasmic reticulum (ER), while overexpression of ORP150 promoted the secretion of VEGF into hypoxic culture supernatants. Taken together, these data suggest an important role for ORP150 in the setting of impaired wound repair and identify a key, inducible chaperone-like molecule in the ER. This novel facet of the angiogenic response may be amenable to therapeutic manipulation.

Authors

Kentaro Ozawa, Toshikazu Kondo, Osamu Hori, Yasuko Kitao, David M. Stern, Wolfgang Eisenmenger, Satoshi Ogawa, Tohru Ohshima

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Figure 5

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Effect of ORP150 on wound closure. A secondary intention wound (12 mm in...
Effect of ORP150 on wound closure. A secondary intention wound (12 mm in diameter) was introduced in either C57BL/6J-m+/+Leprdb (db/db) mice or C57BL/6J (wild-type) mice. Photographs of the wounds are shown on days 3 and 9 after induction of the wounds (a and d). The db/db mice were treated with either AxCALacZ (LacZ) or Ad/S-ORP150 (sense), and wild-type mice were treated with either Ad/AS-ORP150 (antisense) or AxCALacZ. In each case, 2 × 108 pfu of adenovirus was subcutaneously injected at each octal angle of the wound 2 mm from the edge. Wound closure, shown as percentage of area of the initial wound (b and e) and histologic score (c and f) were determined on the indicated day after wounding: db/db mice were treated with AxCALacZ (db/db + LacZ) or Ad/S-ORP150 (db/db + sense), and wild-type were treated with AxCALacZ (wild-type + LacZ) or Ad/AS-ORP150 (wild-type + antisense). n = 4,; mean ± SD. *P < 0.01 by multiple contrast analysis.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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