Suppression of Paclitaxel-Induced Neuropathy and Ovarian Tumor Growth by Mn Porphyrin, MnTnBuOE-2-PyP<sup>5+</sup> (BMX-001).

Abstract

Numerous cellular and animal studies demonstrated the ability of redox-active Mn(III) N-alkyl- and N-alkoxyalkylpyridyporphyrins (MnPs) to protect normal tissue while suppressing tumor growth. The mechanism primarily involves the modulation of NF-кB and Nrf2 signaling pathways via catalysis of MnP/H2O2-driven protein thiol oxidation. Such differential protection/suppression effects have paved the way of Mn porphyrins (commonly known as mimics of superoxide dismutase) into clinical trials, therefore introducing new line of therapeutics that are affecting cellular redox status/oxidative stress, rather than specific proteins. The most clinically advanced Mn porphyrin, Mn(III) meso-tetrakis(N-n-butoxyethyl-2-pyridyl) porphyrin (MnTnBuOE-2-PyP5+, BMX-001) has progressed into five Phase II clinical trials, two of those related to the injuries of central nervous system. Currently, no efficient treatment for chemotherapy-induced neuropathy is available in clinics. We therefore employed BMX-001 to assess its effect on paclitaxel (PTX)-induced neuropathy. Mechanical (Von-Frey filaments) and thermal (hot plate) stimulation, toxicity (body weight), muscular coordination and general physical condition (rotarod) of female CD-1 mice were evaluated over 3 weeks with 2 mg/kg daily dosing and also at clinically relevant dosing of 0.8 mg/kg given subcutaneously (SC) twice weekly after 1.6 mg/kg loading dose. Data revealed a significant ability of BMX-001 to suppress peripheral neuropathy and neuroinflammation. Importantly, while protecting peripheral tissue, BMX-001 suppressed the tumor growth of CAOV2 high-grade serous ovarian cancer in a mouse subcutaneous xenograft model. Previously, the strong anticancer effect was only seen when Mn porphyrins were combined with radiation, chemotherapy, and ascorbate (Asc). Our data further demonstrate that high-grade serous ovarian cancer is the first in vivo cancer thus far studied where redox-active Mn porphyrin, as a single agent, exhibits strong anticancer effect, comparable to that of PTX. The effect is presumably due to high tumor levels of BMX-001 and high oxidative stress specific to the aggressive chemoresistant CAOV2 cell line. Such a strong anticancer effect of BMX-001 would allow for lowering the dosing of PTX and reducing the neuropathy. The combined neuropathy protection and anticancer efficacy demonstrate, therefore, strong therapeutic potential of BMX-001 for gynecological cancers. Moreover, the ability of BMX-001 to suppress neuropathy may be relevant for all types of cancer where chemotherapeutics that induce neuropathy are used as a standard-of-care.

Department

Description

Provenance

Subjects

Cell Line, Tumor, Animals, Humans, Mice, Ovarian Neoplasms, Peripheral Nervous System Diseases, Paclitaxel, Metalloporphyrins, Female

Citation

Published Version (Please cite this version)

10.1155/omcl/6333148

Publication Info

Spasojevic, Ivan, Zhiqing Huang, Welida Tamires Alves da Silva, Weina Duan, Li Du, Cathleen Chen, Jie Cao, Shasha Zhang, et al. (2025). Suppression of Paclitaxel-Induced Neuropathy and Ovarian Tumor Growth by Mn Porphyrin, MnTnBuOE-2-PyP<sup>5+</sup> (BMX-001). Oxidative medicine and cellular longevity, 2025(1). p. 6333148. 10.1155/omcl/6333148 Retrieved from https://hdl.handle.net/10161/34613.

This is constructed from limited available data and may be imprecise. To cite this article, please review & use the official citation provided by the journal.

Scholars@Duke

Spasojevic

Ivan Spasojevic

Associate Professor in Medicine
Sheng

Huaxin Sheng

Professor in Anesthesiology

We have successfully developed various rodent models of brain and spinal cord injuries in our lab, such as focal cerebral ischemia, global cerebral ischemia, head trauma, subarachnoid hemorrhage, intracerebral hemorrhage, spinal cord ischemia, and compression injury. We also established cardiac arrest and hemorrhagic shock models for studying multiple organ dysfunction.  Our current studies focus on two projects. One is to examine the efficacy of catalytic antioxidants in treating cerebral ischemia, and the other is to investigate the effectiveness of post-conditioning on the outcome of subarachnoid hemorrhage-induced cognitive dysfunction.

We are a part of the NIH Stroke Preclinical Assessment Network (SPAN).

Batinic-Haberle

Ines Batinic-Haberle

Professor Emeritus of Radiation Oncology

            A major interest of mine has been in the design and synthesis of Mn porphyrin(MnP)-based powerful catalytic antioxidants which helped establish structure-activity relationship (SAR). It relates the redox property of metalloporphyrins to their ability to remove superoxide. SAR has facilitated the design of redox-active therapeutics and served as a tool for mechanistic considerations. Importantly SAR parallels the magnitude of the therapeutic potential of SOD mimics and is valid for all classes of redox-active compounds. Two lead Mn porphyrins are already in five Phase II clinical trials (reviewed in Batinic-Haberle et al, Oxid Med Cell Longevity 2021). Recent research suggests immense potential of MnPs in cardiac diseases. MnTE-2-PyP (AEOL10113, BMX-010) prevents and treats cardiac arrhythmia, while MnTnBuOE-2-PyP (BMX-001) fully suppressed the development of aortic sclerosis in mice. The latter result is relevant to the cancer patients undergoing chemotherapy. In addition to breast cancer, in collaboration with Angeles Alvarez Secord, MD, MHSc, we have recently shown the anticancer effects of Mn porphyrin/ascorbate in cellular and mouse models of ovarian cancer.

            In parallel with synthetic efforts, I have also been interested in the mechanistic aspects of differential actions of Mn porphyrins in normal vs tumor tissue. In-depth studies of chemistry and biology of the reactions of MnPs with redox-active agents relevant to cancer therapy – ascorbate, chemotherapy and radiation – set ground for understanding the role of thermodynamics and kinetics in the mechanism of action of Mn porphyrins. Mechanistic studies have been revealed in Batinic-Haberle et al, Antioxidant Redox Signal 2018, Batinic-Haberle and Tome, Redox Biology 2019 and Batinic-Haberle et al Oxidative Medicine and Cellular Longevity 2021. My research has resulted in over 230 publications, 18 268 citations and an h-index of 64. For my achievements, I have been awarded the 2021 Discovery Award from the Society for Redox Biology and Medicine, SfRBM.

Additional Training

 

  • Postdoctoral fellowship with Professor Alvin Crumbliss in the field of Bioinorganic Chemistry, Department of Chemistry, Duke University
  • Postdoctoral fellowship with Professor Irwin Fridovich in the field of Redox Biology, Department of Biochemistry, Duke University School of Medicine
Secord

Angeles Alvarez Secord

Professor of Obstetrics and Gynecology

My primary research interest has focused on on novel therapeutics, biomarkers and clinical trial development for ovarian and endometrial cancer. My fundamental goal is to develop a strong translational research program at Duke University in the Gynecologic Oncology Division, where knowledge we glean from our basic science research can be incorporated into our clinical trial program. Specifically, my focus is on biologic therapy and molecular biomarkers to direct therapy in patients with ovarian and endometrial cancers to determine if a strategy that incorporates both clinical and genomic information can improve clinical outcome, minimize unnecessary toxicity, and impact positively on quality of life.

 

In addition I am interested in robotic-assisted laparoscopic surgery for women with endometrial, ovarian and cervical cancers, as well as for benign gynecologic conditions.


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