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DS-7300a, a DNA Topoisomerase I Inhibitor, DXd-Based Antibody-Drug Conjugate Targeting B7-H3, Exerts Potent Antitumor
Michiko Yamato1, Jun Hasegawa1, Takanori Maejima1
1Daiichi Sankyo Co., Ltd., Tokyo, Japan.
Abstract:
B7-H3 is overexpressed in various solid tumors and has been considered as an attractive target for cancer therapy. Here, we report the development of DS-7300a, a novel B7-H3-targeting antibody-drug conjugate with a potent DNA topoisomerase I inhibitor, and its in vitro profile, pharmacokinetic profiles, safety profiles, and in vivo antitumor activities in nonclinical species. The target specificity and species cross-reactivity of DS-7300a were assessed. Its pharmacologic activities were evaluated in several human cancer cell lines in vitro and xenograft mouse models, including patient-derived xenograft (PDX) mouse models in vivo. Pharmacokinetics was investigated in cynomolgus monkeys. Safety profiles in rats and cynomolgus monkeys were also assessed. DS-7300a specifically bound to B7-H3 and inhibited the growth of B7-H3-expressing cancer cells, but not that of B7-H3-negative cancer cells, in vitro. Additionally, treatment with DS-7300a and DXd induced phosphorylated checkpoint kinase 1, a DNA damage marker, and cleaved PARP, an apoptosis marker, in cancer cells. Moreover, DS-7300a demonstrated potent in vivo antitumor activities in high-B7-H3 tumor xenograft models, including various tumor types of high-B7-H3 PDX models. Furthermore, DS-7300a was stable in circulation with acceptable pharmacokinetic profiles in monkeys, and well tolerated in rats and monkeys. DS-7300a exerted potent antitumor activities against B7-H3-expressing tumors in in vitro and in vivo models, including PDX mouse models, and showed acceptable pharmacokinetic and safety profiles in nonclinical species. Therefore, DS-7300a may be effective in treating patients with B7-H3-expressing solid tumors in a clinical setting.
Insights
A new B7-H3-targeting antibody-drug conjugate, DS-7300a, shows potent anti-tumor activity in preclinical models. DS-7300a demonstrates promising efficacy and safety for treating B7-H3-expressing solid tumors.
Area of Science:
- Oncology
- Pharmacology
- Drug Development
Background:
- B7-H3 is frequently overexpressed in various solid tumors, making it a significant therapeutic target.
- Developing targeted therapies against B7-H3 is crucial for improving cancer treatment outcomes.
Purpose of the Study:
- To report the development and nonclinical profile of DS-7300a, a novel B7-H3-targeting antibody-drug conjugate.
- To evaluate the in vitro, pharmacokinetic, safety, and in vivo antitumor activities of DS-7300a.
Main Methods:
- DS-7300a's target specificity and species cross-reactivity were assessed.
- Pharmacologic activities were evaluated in human cancer cell lines and xenograft mouse models, including patient-derived xenografts (PDX).
- Pharmacokinetics and safety were investigated in nonclinical species (cynomolgus monkeys and rats).
Main Results:
- DS-7300a specifically bound B7-H3 and inhibited B7-H3-expressing cancer cell growth in vitro.
- DS-7300a induced DNA damage and apoptosis markers in cancer cells.
- Potent in vivo antitumor activity was observed in high-B7-H3 xenograft and PDX models.
- DS-7300a exhibited stable circulation, acceptable pharmacokinetics, and good tolerability in nonclinical species.
Conclusions:
- DS-7300a demonstrates potent antitumor activity against B7-H3-expressing tumors in preclinical models.
- Acceptable pharmacokinetic and safety profiles suggest DS-7300a's potential clinical efficacy for B7-H3-expressing solid tumors.
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