Selective Radioprotection by the Fusion Antioxidant Enzyme GS1XR Via an MMP-2/9-Cleavable Cell-Penetrating Switch

  • FASEB J. 2026 Apr 30;40(8):e71768. doi: 10.1096/fj.202503666R.
Huocong He  1 Jinnan Chu  2  3 Lixiang Lin  2  3 Lulin Lu  2  3 Chaoyang Li  2  3 Yanan Han  2  3 Jianru Pan  2  3
Affiliations
  • 1. Laboratory of Radiation Biology, Clinical Oncology School of Fujian Medical University, Fujian Cancer Hospital, Fuzhou, Fujian, China.
  • 2. College of Biological Science and Engineering, Fuzhou University, Fuzhou, Fujian, China.
  • 3. The Key Laboratory of Novel Enzyme Design and Creation of Fujian Province, Fuzhou University, Fuzhou, Fujian, China.
Abstract

Radiotherapy is central to Cancer treatment but radiation-induced oxidative stress also damages normal tissues. To achieve selective radioprotection of normal tissues, we systematically evaluated, in vitro and in vivo, the antioxidant and radioprotective performance of a previously engineered fusion antioxidant enzyme, GS1XR (GST-SOD1-X-R9). GS1XR efficiently enters normal cells in low Matrix Metalloproteinases (MMP)-2/9 environments, scavenges radiation-induced Reactive Oxygen Species (ROS), maintains the Nrf2 antioxidant pathway, suppresses Apoptosis, and increases clonogenic survival. In contrast, in 3D tumor microenvironments with high MMP-2/9, cleavage of the X peptide removes R9, resulting in a loss of transmembrane capacity and a pronounced reduction in intracellular ROS scavenging. Animal studies further showed that GS1XR significantly alleviates whole-body irradiation-induced hematopoietic injury and, in tumor-bearing models receiving radiotherapy, does not compromise radiotherapy-mediated tumor control. Collectively, GS1XR couples microenvironment-responsive cell entry with enzymatic antioxidation to achieve selective radioprotection while preserving radiotherapy-mediated tumor control.

Keywords
MMP‐2/9; cell‐penetrating peptide; fusion antioxidant enzyme; oxidative stress; selective radioprotection; tumor spheroids.
Products
  • Cat. No.
    Product Name
    Description
    Target
    Research Area
  • 99.84%, MMP2/9 Inhibitor
    target: MMP
    Research Areas: Cancer