The role of LOXL2 induced by glucose metabolism-activated NF-κB in maintaining drug resistance through EMT and cancer stemness in gemcitabine-resistant PDAC

Author:

Lee Yun Sun,Kim Hyung Sun,Kim Hyo JungORCID,Kang Hyeon Woong,Lee Da Eun,Kim Myeong Jin,Hong Woosol Chris,Kim Ju Hyun,Kim Minsoo,Cheong Jae-Ho,Park Joon Seong

Abstract

Abstract Gemcitabine is considered a standard treatment for pancreatic cancer, but developing drug resistance greatly limits the effectiveness of chemotherapy and increases the rate of recurrence. Lysyl oxide-like 2 (LOXL2) is highly expressed in pancreatic cancer and is involved in carcinogenesis and EMT regulation. However, studies on the role of LOXL2 in drug resistance are limited. Here, we investigated the mechanism of LOXL2 induction and the effect of LOXL2 on EMT and CSC in gemcitabine-resistant pancreatic cancer. Glucose metabolism was activated in gemcitabine-resistant pancreatic cancer cells, and NF-κB signaling was regulated accordingly. Activated NF-κB directly induces transcription by binding to the promoters of LOXL2 and ZEB1. The EMT process was significantly inhibited by the coregulation of ZEB1 and LOXL2. In addition, LOXL2 inhibition reduced the expression of cancer stemness markers and stemness by regulating MAPK signaling activity. LOXL2 inhibits tumor growth of gemcitabine-resistant pancreatic cancer cells and increases the sensitivity to gemcitabine in mouse models. Key messages We identified a specific mechanism for inducing LOXL2 overexpression in gemcitabine-resistant pancreatic cancer. Taken together, our results suggest LOXL2 has an important regulatory role in maintaining gemcitabine resistance and may be an effective therapeutic target to treat pancreatic cancer.

Funder

National Research Foundation of Korea (NRF) grant funded by the Korean Government, Ministry of Science, and ICT

Industrial Strategic Technology Development Program funded by the Ministry of Trade, Industry and Energy

Yonsei University College of Medicine

Publisher

Springer Science and Business Media LLC

Subject

Genetics (clinical),Drug Discovery,Molecular Medicine

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