In vivo FAP-CAR macrophages enhance chemotherapy and immunotherapy against pancreatic cancer by removing the fibrosis barrier.
1/5 보강
PICO 자동 추출 (휴리스틱, conf 2/4)
유사 논문P · Population 대상 환자/모집단
환자: pancreatic ductal adenocarcinoma (PDAC) derive limited benefits from chemotherapy or immunotherapy, with a five-year survival rate still below 10 %
I · Intervention 중재 / 시술
추출되지 않음
C · Comparison 대조 / 비교
추출되지 않음
O · Outcome 결과 / 결론
Our results demonstrate that mRNA-MLNP can efficiently reprogram M2 macrophages into FAP-CAR-M.
Patients with pancreatic ductal adenocarcinoma (PDAC) derive limited benefits from chemotherapy or immunotherapy, with a five-year survival rate still below 10 %.
APA
Wang W, Hu K, et al. (2025). In vivo FAP-CAR macrophages enhance chemotherapy and immunotherapy against pancreatic cancer by removing the fibrosis barrier.. Journal of controlled release : official journal of the Controlled Release Society, 384, 113888. https://doi.org/10.1016/j.jconrel.2025.113888
MLA
Wang W, et al.. "In vivo FAP-CAR macrophages enhance chemotherapy and immunotherapy against pancreatic cancer by removing the fibrosis barrier.." Journal of controlled release : official journal of the Controlled Release Society, vol. 384, 2025, pp. 113888.
PMID
40425095 ↗
Abstract 한글 요약
Patients with pancreatic ductal adenocarcinoma (PDAC) derive limited benefits from chemotherapy or immunotherapy, with a five-year survival rate still below 10 %. The key therapeutic challenge is the dense fibrosis barrier driven by activated cancer-associated fibroblasts (CAFs) and their secreted collagen, which impedes drug penetration and characterizes PDAC as an immune-desert tumor. To address this challenge, we developed in vivo chimeric antigen receptor macrophages (FAP-CAR-M) targeting fibroblast activation protein-α (FAP), the marker of activated CAFs, to enhance chemo and immunotherapy against PDAC by removing the fibrosis barrier using mannose-modified mRNA-LNP (MLNP). Our results demonstrate that mRNA-MLNP can efficiently reprogram M2 macrophages into FAP-CAR-M. With the FAP-CAR-M treatment, the activated CAF markers (FAP), collagen volume fraction (CVF), and the type I collagen (Col1a1) secretion were decreased by 3-fold, 5-fold, and 4-fold inan orthotopic mouse model of PDAC, respectively. By removing the fibrosis barrier, FAP-CAR-M enhanced the penetration of gemcitabine (GEM) and immune cells, improved PDAC sensitivity to chemo and immunotherapy, and significantly prolonged survival. Therefore, in vivo FAP-CAR-M may represent a potential therapeutic approach to enhance chemo and immunotherapy against PDAC by removing the fibrosis barrier.
🏷️ 키워드 / MeSH 📖 같은 키워드 OA만
- Animals
- Pancreatic Neoplasms
- Immunotherapy
- Macrophages
- Carcinoma
- Pancreatic Ductal
- Fibrosis
- Humans
- Endopeptidases
- Mice
- Cell Line
- Tumor
- Serine Endopeptidases
- Membrane Proteins
- Deoxycytidine
- Gelatinases
- Gemcitabine
- Cancer-Associated Fibroblasts
- Female
- Inbred C57BL
- Antineoplastic Agents
- Fibroblast Activation Protein Alpha
- Chemo and immunotherapy
- In vivo chimeric antigen receptor macrophages (FAP-CAR-M)
… 외 2개
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