DIXDC1 Promotes Lymphatic Metastasis and Resistance to Cuproptosis in Bladder Cancer Through Mediating DLAT

Lymph node metastasis (LN) represents a major clinical challenge in bladder cancer (BCa) and is associated with dismal prognosis; however, the underlying molecular drivers remain incompletely understood. Here, we demonstrate that DIX domain-containing protein 1 (DIXDC1) is significantly upregulated in LN-metastatic BCa tissues and is associated with unfavorable clinical outcomes. Functionally, DIXDC1 enhances BCa cell migration, invasion, proliferation, and lymph node dissemination in vivo. Mechanistically, DIXDC1 directly binds to dihydrolipoamide S-acetyltransferase (DLAT), a key enzyme in the tricarboxylic acid cycle and a central effector of cuproptosis. This interaction impedes ubiquitin-proteasome-mediated degradation of DLAT, thereby stabilizing DLAT protein levels. Through a DLAT-dependent pathway, DIXDC1 further augments the mRNA stability of the oncogenes NEK7 and CCNE2, fueling tumor progression. Importantly, DIXDC1 shields BCa cells from copper-induced DLAT oligomerization and confers marked resistance to Elesclomol-Cu (ES-Cu)-triggered cuproptosis. Depletion of DIXDC1 profoundly sensitizes tumors to cuproptosis in vivo. Collectively, our study unveils the DIXDC1-DLAT axis as a pivotal regulator that coordinately drives metastatic progression and suppresses copper-induced cell death, offering a promising therapeutic target for advanced BCa.

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Publication Details

Journal
Advanced Science
Published
2026-08-27
DOI
https://doi.org/10.1002/advs.77435
Primary Topic
Biochemical Acid Research Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

DIXDC1 Promotes Lymphatic Metastasis and Resistance to Cuproptosis in Bladder Cancer Through Mediating DLAT

Shi Fu, Haifeng Wang, Siting Chen, Mingsheng Liu et al.
Advanced Science
Biochemical Acid Research Studies
article

DIXDC1 Promotes Lymphatic Metastasis and Resistance to Cuproptosis in Bladder Cancer Through Mediating DLAT

Shi Fu, Haifeng Wang, Siting Chen, Mingsheng Liu, Hongqiong Li, Chenwei Yang, XinNi Ye, Haonan Dong, Liang Cheng, Xu Chen, Hongjin Shi, Zehua Chen, Xiaole Lu, Yuhang Huang, Kaiwen Jie, Xiang Kui, Yawei Zhang, Xiaoyue Zhang
article en

Abstract

Lymph node metastasis (LN) represents a major clinical challenge in bladder cancer (BCa) and is associated with dismal prognosis; however, the underlying molecular drivers remain incompletely understood. Here, we demonstrate that DIX domain-containing protein 1 (DIXDC1) is significantly upregulated in LN-metastatic BCa tissues and is associated with unfavorable clinical outcomes. Functionally, DIXDC1 enhances BCa cell migration, invasion, proliferation, and lymph node dissemination in vivo. Mechanistically, DIXDC1 directly binds to dihydrolipoamide S-acetyltransferase (DLAT), a key enzyme in the tricarboxylic acid cycle and a central effector of cuproptosis. This interaction impedes ubiquitin-proteasome-mediated degradation of DLAT, thereby stabilizing DLAT protein levels. Through a DLAT-dependent pathway, DIXDC1 further augments the mRNA stability of the oncogenes NEK7 and CCNE2, fueling tumor progression. Importantly, DIXDC1 shields BCa cells from copper-induced DLAT oligomerization and confers marked resistance to Elesclomol-Cu (ES-Cu)-triggered cuproptosis. Depletion of DIXDC1 profoundly sensitizes tumors to cuproptosis in vivo. Collectively, our study unveils the DIXDC1-DLAT axis as a pivotal regulator that coordinately drives metastatic progression and suppresses copper-induced cell death, offering a promising therapeutic target for advanced BCa.

Advanced Science
Sun Yat-sen University (CN), Kunming Medical University (CN), Sun Yat-sen Memorial Hospital (CN), Qujing Normal University (CN), Guangdong Provincial People's Hospital (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 15%
Biochemical Acid Research Studies
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