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Acceleration of diabetic wound healing using a novel protease-anti-protease combination therapy.
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2
Restructuring of the extracellular matrix in diabetic wounds and healing: A perspective.
Pharmacol Res. 2016 May;107:243-248. doi: 10.1016/j.phrs.2016.03.008. Epub 2016 Mar 24.
3
A chemical biological strategy to facilitate diabetic wound healing.
ACS Chem Biol. 2014 Jan 17;9(1):105-10. doi: 10.1021/cb4005468. Epub 2013 Sep 26.
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Strategy for Treatment of Infected Diabetic Foot Ulcers.
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Effect of Horse-chestnut seed extract on matrix metalloproteinase-1 and -9 during diabetic wound healing.
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Expression of matrix-metalloproteinases and their inhibitors in the wounds of diabetic and non-diabetic patients.
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Selective MMP-9 Inhibitor ()-ND-336 Alone or in Combination with Linezolid Accelerates Wound Healing in Infected Diabetic Mice.
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10
Expression of matrix metalloproteinases and growth factors in diabetic foot wounds treated with a protease absorbent dressing.
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Mitochondrial dysfunction in diabetic ulcers: pathophysiological mechanisms and targeted therapeutic strategies.
Front Cell Dev Biol. 2025 Aug 21;13:1625474. doi: 10.3389/fcell.2025.1625474. eCollection 2025.
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Targeting Cathepsin K to Accelerate Diabetic Wound Healing.
ACS Pharmacol Transl Sci. 2025 Jun 20;8(7):2258-2269. doi: 10.1021/acsptsci.5c00295. eCollection 2025 Jul 11.
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Cell migration in diabetic wound healing: Molecular mechanisms and therapeutic strategies (Review).
Int J Mol Med. 2025 Aug;56(2). doi: 10.3892/ijmm.2025.5567. Epub 2025 Jun 20.
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CDK1-loaded extracellular vesicles promote cell cycle to reverse impaired wound healing in diabetic obese mice.
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Matrix Metalloproteinase-9 as a Predictor of Healing in Diabetic Foot Ulcers.
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Role of MMP-2, MMP-9, TIMP-1, and TIMP-2 in children with ventricular septal defect.
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Epidermal stem cells: Interplay with the skin microenvironment during wound healing.
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The emerging modulators of non-coding RNAs in diabetic wound healing.
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Targeting Matrix Metalloproteinase-9 for Therapeutic Intervention in Diabetic Foot Ulcers.
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Matrix Metalloproteinases on Skin Photoaging.
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本文引用的文献

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Sulfonate-containing thiiranes as selective gelatinase inhibitors.
ACS Med Chem Lett. 2010 Dec 13;2(2):177-81. doi: 10.1021/ml100254e. eCollection 2011 Feb 10.
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Growth Factor-Extracellular Matrix Interactions Regulate Wound Repair.
Adv Wound Care (New Rochelle). 2012 Dec;1(6):249-254. doi: 10.1089/wound.2011.0344.
3
A chemical biological strategy to facilitate diabetic wound healing.
ACS Chem Biol. 2014 Jan 17;9(1):105-10. doi: 10.1021/cb4005468. Epub 2013 Sep 26.
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Structure-Activity Relationship for Thiirane-Based Gelatinase Inhibitors.
ACS Med Chem Lett. 2012 Jun 14;3(6):490-495. doi: 10.1021/ml300050b. Epub 2012 May 2.
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Management of diabetic foot ulcers.
Diabetes Ther. 2012 Nov;3(1):4. doi: 10.1007/s13300-012-0004-9. Epub 2012 Apr 20.
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Selective water-soluble gelatinase inhibitor prodrugs.
J Med Chem. 2011 Oct 13;54(19):6676-90. doi: 10.1021/jm200566e. Epub 2011 Sep 6.
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Role of matrix metalloproteinases and therapeutic benefits of their inhibition in spinal cord injury.
Neurotherapeutics. 2011 Apr;8(2):206-20. doi: 10.1007/s13311-011-0038-0.
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A matched cohort study of the risk of cancer in users of becaplermin.
Adv Skin Wound Care. 2011 Jan;24(1):31-9. doi: 10.1097/01.ASW.0000392922.30229.b3.
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Active site ring-opening of a thiirane moiety and picomolar inhibition of gelatinases.
Chem Biol Drug Des. 2009 Dec;74(6):527-34. doi: 10.1111/j.1747-0285.2009.00881.x. Epub 2009 Oct 6.

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