Related Experiment Video
Updated: Jul 18, 2026

A Rapid Filter Insert-based 3D Culture System for Primary Prostate Cell Differentiation
Published on: February 13, 2017
Semaphorin 3C promotes de novo steroidogenesis in prostate cancer cells
Parvin Yenki1,2, Satyam Bhasin1, Liang Liu1
1The Vancouver Prostate Centre, Vancouver General Hospital, Vancouver, BC, Canada.
Abstract:
Intratumoral androgen biosynthesis contributes to castration-resistant prostate cancer progression in patients treated with androgen deprivation therapy. The molecular mechanisms by which castration-resistant prostate cancer acquires the capacity for androgen biosynthesis to bypass androgen deprivation therapy are not entirely known. Here, we show that semaphorin 3C, a secreted signaling protein that is highly expressed in castration-resistant prostate cancer, can promote steroidogenesis by altering the expression profile of key steroidogenic enzymes. Semaphorin 3C not only upregulates enzymes required for androgen synthesis from dehydroepiandrosterone or de novo from cholesterol but also simultaneously downregulates enzymes involved in the androgen inactivation pathway. These changes in gene expression correlate with increased production of androgens induced by semaphorin 3C in prostate cancer model cells. Moreover, semaphorin 3C upregulates androgen synthesis in LNCaP cell-derived xenograft tumors, likely contributing to the enhanced in vivo tumor growth rate post castration. Furthermore, semaphorin 3C activates sterol regulatory element-binding protein, a transcription factor that upregulates enzymes involved in the synthesis of cholesterol, a sole precursor for de novo steroidogenesis. The ability of semaphorin 3C to promote intratumoral androgen synthesis may be a key mechanism contributing to the reactivation of the androgen receptor pathway in castration-resistant prostate cancer, conferring continued growth under androgen deprivation therapy. These findings identify semaphorin 3C as a potential therapeutic target for suppressing intratumoral steroidogenesis.
Insights
Semaphorin 3C promotes intratumoral androgen synthesis in castration-resistant prostate cancer. This protein upregulates androgen production and enhances tumor growth, identifying it as a potential therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Endocrinology
Background:
- Intratumoral androgen biosynthesis drives castration-resistant prostate cancer (CRPC) progression despite androgen deprivation therapy (ADT).
- Mechanisms enabling CRPC to synthesize androgens and bypass ADT remain incompletely understood.
Purpose of the Study:
- To investigate the role of semaphorin 3C (SEMA3C) in promoting intratumoral androgen biosynthesis in CRPC.
- To elucidate the molecular mechanisms by which SEMA3C influences steroidogenic enzyme expression and androgen production.
Main Methods:
- Analysis of SEMA3C expression in CRPC.
- Assessment of SEMA3C's effects on key steroidogenic enzyme expression and androgen synthesis in prostate cancer cell lines.
- Evaluation of SEMA3C's impact on xenograft tumor growth in vivo.
- Investigation of SEMA3C's activation of sterol regulatory element-binding protein (SREBP).
Main Results:
- SEMA3C is highly expressed in CRPC and promotes steroidogenesis by altering steroidogenic enzyme profiles.
- SEMA3C upregulates androgen synthesis enzymes while downregulating androgen inactivation pathways, leading to increased androgen production.
- SEMA3C enhances in vivo tumor growth in LNCaP xenografts and activates SREBP, promoting cholesterol synthesis.
Conclusions:
- SEMA3C promotes intratumoral androgen synthesis, potentially reactivating the androgen receptor pathway in CRPC.
- SEMA3C's ability to drive androgen production contributes to continued tumor growth under ADT.
- SEMA3C represents a promising therapeutic target for inhibiting intratumoral steroidogenesis in CRPC.
Related Concept Videos
Mitogens and the Cell Cycle
Abnormal Proliferation

