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Updated: Dec 16, 2025

In Vivo Inhibition of MicroRNA to Decrease Tumor Growth in Mice
Published on: August 23, 2019
Exosome-transmitted microRNA-133b inhibited bladder cancer proliferation by upregulating dual-specificity protein
Xiaoxiao Cai1, Lili Qu1, Jian Yang2
1Laboratory Medicine Center, The Second Affiliated Hospital, Nanjing Medical University, Nanjing, Jiangsu, China.
Abstract:
Bladder Cancer (BC) is the ninth most common tumor in the world and one of the most common malignant tumors of the urinary system. Some studies reported that miR-133b expression is reduced in BC, but whether it plays a role in the development of BC and its mechanism is unclear. microRNAs can be packaged into exosomes to mediate communication between tumor cells, affecting their proliferation and apoptosis. The objective of this study was to investigate the effect of exosomal miR-133b on BC proliferation and its molecular mechanism. Firstly, the expression of miR-133b was evaluated in BC and adjacent normal tissues, as well as in serum exosomes of BC patients and healthy controls. Then the delivery and internalization of exosomes in cells was observed through fluorescence localization. Cell viability and apoptosis were assessed in BC cells transfected with mimics and incubated with exosomes. The role of exosomal miR-133b was also analyzed in nude mice transplant tumors. Furthermore, the target gene of miR-133b was predicted through bioinformatics. The level of miR-133b was significantly decreased in BC tissues and in exosomes from serum of patients, which was correlated with poor overall survival in TCGA. Exosomal miR-133b could be obtained using BC cells after transfection with miR-133b mimics. The miR-133b expression increased after incubation with exosomal miR-133b, which lead to the inhibition of viability and increase of apoptosis in BC cells. Exosomal miR-133b could suppress tumor growth in vivo. In addition, we found that exosomal miR-133b may play a role in suppressing BC proliferation by upregulating dual-specificity protein phosphatase 1 (DUSP1). These findings may offer promise for new therapeutic directions of BC.
Insights
Exosomal miR-133b is decreased in bladder cancer (BC) and inhibits tumor growth by reducing cell viability and increasing apoptosis. This microRNA may offer new therapeutic strategies for BC treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Bladder cancer (BC) is a prevalent malignancy of the urinary system.
- Reduced miR-133b expression in BC suggests a potential role in tumorigenesis.
- MicroRNAs within exosomes mediate intercellular communication, influencing cancer cell behavior.
Purpose of the Study:
- To investigate the impact of exosomal miR-133b on bladder cancer cell proliferation and apoptosis.
- To elucidate the molecular mechanisms underlying exosomal miR-133b's function in BC.
- To evaluate exosomal miR-133b as a potential biomarker and therapeutic agent for BC.
Main Methods:
- Quantification of miR-133b in BC tissues and serum exosomes.
- Observation of exosome delivery and internalization via fluorescence microscopy.
- Assessment of cell viability and apoptosis in BC cells treated with exosomal miR-133b.
- In vivo tumor growth inhibition studies in nude mice.
- Bioinformatic prediction of miR-133b target genes.
Main Results:
- miR-133b levels were significantly decreased in BC tissues and patient serum exosomes, correlating with poorer survival.
- Exosomal miR-133b delivery suppressed BC cell viability and induced apoptosis.
- Exosomal miR-133b demonstrated in vivo tumor growth suppression.
- Upregulation of dual-specificity protein phosphatase 1 (DUSP1) by exosomal miR-133b was identified as a potential mechanism.
Conclusions:
- Exosomal miR-133b plays a suppressive role in bladder cancer progression.
- Exosomal miR-133b inhibits BC proliferation and induces apoptosis, potentially via DUSP1 upregulation.
- Exosomal miR-133b holds promise as a novel therapeutic target for bladder cancer.
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