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Sandow, P. V.

Publications and source records attributed to Sandow, P. V..

2 recordsLinked to original sources

PEG-Arginase 1: A Novel Therapy for Optic Nerve Injury

Traumatic optic neuropathy (TON) occurs due to direct or indirect injury to the optic nerve and is a significant cause of visual disability. So far, there is no effective treatment. The lack of understanding of the cellular mechanisms by which trauma induces inflammation and damage in retinal neurons is a critical knowledge gap in developing effective therapies. We have studied the role of the arginase 1 (A1) enzyme in this pathology. We have found previously that treatment with a long-acting form of human recombinant A1, pegylated A1 (PEG-A1) after optic nerve crush limits activation of retinal microglia and macrophages (M{Phi}) and reduces inflammation, thereby decreasing injury and protecting visual function. Here we report on studies designed to demonstrate the therapeutic efficacy of PEG-A1 in mouse models of direct and indirect TON and to elucidate the underlying mechanisms. We used ONC to model direct TON and sonication-induced trauma to the supraorbital rim to model indirect TON (SI-TON). At different times after injury, mice were treated with PEG-A1 which was delivered systemically by i.p. injection or locally by intravitreal injection. In order to assess the role of A1-induced activation of the ornithine/polyamine pathway in the protective effects of PEG-A1, some mice were treated with the ornithine decarboxylase (ODC) inhibitor, difluoromethylornithine (DFMO) immediately after the PEG-A1 treatment. Retinal function was determined by OptoMotry and electroretinography. Retinal injury and microglia/M{Phi} activation were assessed by immunofluorescence imaging. Expression of inflammatory cytokines was determined by Western blotting and quantitative RT PCR. Liquid chromatography mass spectrometry was used to analyze changes in arginase/ODC pathway metabolites. Results showed that PEG-A1 treatment improved neuronal survival and visual function whether delivered systemically or intravitreally. This neuroprotection was associated with decreased microglia/M{Phi} activation, decreased inflammatory cytokine expression, and increased formation of L-ornithine and putrescine. Furthermore, DFMO treatment blocked these effects, indicating that PEG-A1 limits retinal injury and preserves vision after ocular injury by activating ODC. ODC processes the arginase product L-ornithine to form polyamines which are known to promote reparative functions. Thus, PEG-A1 therapy offers a new strategy to limit trauma-induced vision loss and promote repair after TON.

cell biology↗

Novel Role of AcylCoA:cholesterol acyltransferase 1 (ACAT1/SOAT1) in Diabetic Retinopathy

Hypercholesterolemia and excessive cholesterol ester (CE) production have been linked to chronic inflammation and vascular dysfunction during cardiovascular disease. Upregulation of AcylCoA:cholesterol acyltransferase 1 (ACAT1/SOAT1), the enzyme responsible for retinal CE formation, has been implicated in pathological retinal neovascularization. Here we determine the role of this process in diabetic retinopathy (DR). Ins2Akita diabetic mice were treated with the specific ACAT1/SOAT1 inhibitor K604 (10 mg/Kg, i.p.) beginning at 10 weeks for 2 weeks or 8 months for 2 months. ACAT1/SOAT1 expression and CE formation were assayed along with oxidative stress, inflammation, vascular pathology, and neuronal function. ACAT1/SOAT1 expression was also assayed in human retinas and vitrectomy specimens. Retinas from early-stage Ins2Akita mice exhibited increases in CE deposition, superoxide production, and expression of ACAT1/SOAT1, LDLR, TREM1, MCSF, and VEGF along with leukostasis, vascular leakage, acellular capillary formation, retinal ganglion cell loss, and impaired visual function. Late-stage increases in CE, ACAT1/SOAT, oxidative stress, inflammation, and impaired visual function were also observed. These changes were significantly inhibited by K604 treatment. The protective effects were independent of changes in systemic glucose or body weight. Human retina and vitrectomy samples also showed increases in ACAT1/SOAT1 and CE, respectively. Specific inhibition of ACAT1/SOAT1 with K604 normalizes ACAT1/SOAT1 expression and CE formation and prevents increases in oxidative stress and inflammation and preserves retinal structure and function in both early and late stages of DR. These findings identify ACAT1/SOAT1 as a promising therapeutic target for both early intervention and later stage treatment of DR. One sentence summaryInhibiting cholesterol esterification limits retinal neurovascular injury in diabetes.

cell biology↗