Developing Folate-Conjugated miR-34a Therapeutic for Prostate Cancer: Challenges and Promises

Wen (Jess) Li & Igor Puzanov et al. · 2024-02-09

Prostate cancer (PCa) remains a common cancer with high mortality in men due to its heterogeneity and the emergence of drug resistance. A critical factor contributing to its lethality is the presence of prostate cancer stem cells (PCSCs), which can self-renew, long-term propagate tumors, and mediate treatment resistance. MicroRNA-34a (miR-34a) has shown promise as an anti-PCSC therapeutic by targeting critical molecules involved in cancer stem cell (CSC) survival and functions. Despite extensive efforts, the development of miR-34a therapeutics still faces challenges, including non-specific delivery and delivery-associated toxicity. One emerging delivery approach is ligand-mediated conjugation, aiming to achieve specific delivery of miR-34a to cancer cells, thereby enhancing efficacy while minimizing toxicity. Folate-conjugated miR-34a (folate–miR-34a) has demonstrated promising anti-tumor efficacy in breast and lung cancers by targeting folate receptor α (FOLR1). Here, we first show that miR-34a, a TP53 transcriptional target, is reduced in PCa that harbors TP53 loss or mutations and that miR-34a mimic, when transfected into PCa cells, downregulated multiple miR-34a targets and inhibited cell growth. When exploring the therapeutic potential of folate–miR-34a, we found that folate–miR-34a exhibited impressive inhibitory effects on breast, ovarian, and cervical cancer cells but showed minimal effects on and targeted delivery to PCa cells due to a lack of appreciable expression of FOLR1 in PCa cells. Folate–miR-34a also did not display any apparent effect on PCa cells expressing prostate-specific membrane antigen (PMSA) despite the reported folate’s binding capability to PSMA. These results highlight challenges in the specific delivery of folate–miR-34a to PCa due to a lack of target (receptor) expression. Our study offers novel insights into the challenges and promises within the field and casts light on the development of ligand-conjugated miR-34a therapeutics for PCa.

Funding
Administrative CoreIVIS Spectrum Imaging SystemLigand-mediated, vehicle-free delivery of small RNAsTumor-Suppressive Functions and Molecular Regulation of LRIG1 in Prostate Cancer and CRPCEnhancing miRNA Therapeutics through Vehicle Free DeliveryNovel Therapeutic Strategies to Co-Target Undifferentiated Prostate Cancer (PCa) Stem Cells and Bulk PCa CellsNovel Therapeutic Strategies to Co-Target Undifferentiated Prostate Cancer (PCa) Stem Cells and Bulk PCa CellsTumor-Suppressive Functions and Molecular Regulation of LRIG1 in Prostate Cancer and CRPCLigand-mediated, vehicle-free delivery of small RNAsEnhancing miRNA Therapeutics through Vehicle Free DeliveryTumor-Suppressive Functions and Molecular Regulation of LRIG1 in Prostate Cancer and CRPCNovel Therapeutic Strategies to Co-Target Undifferentiated Prostate Cancer (PCa) Stem Cells and Bulk PCa CellsAdministrative CoreU.S National Institutes of Health (NIH Grant NIH S10OD16450Ligand-mediated, vehicle-free delivery of small RNAsEnhancing miRNA Therapeutics through Vehicle Free DeliveryU.S National Institutes of Health (NIH Grant W81XWH2211085Tumor-Suppressive Functions and Molecular Regulation of LRIG1 in Prostate Cancer and CRPCNovel Therapeutic Strategies to Co-Target Undifferentiated Prostate Cancer (PCa) Stem Cells and Bulk PCa CellsAdministrative Coreoswell Park Alliance Foundation (RPAF) Grant NIH S10OD16450Ligand-mediated, vehicle-free delivery of small RNAsEnhancing miRNA Therapeutics through Vehicle Free Deliveryoswell Park Alliance Foundation (RPAF) Grant W81XWH2211085Tumor-Suppressive Functions and Molecular Regulation of LRIG1 in Prostate Cancer and CRPCNovel Therapeutic Strategies to Co-Target Undifferentiated Prostate Cancer (PCa) Stem Cells and Bulk PCa CellsAdministrative CoreIVIS Spectrum Grant NIH S10OD16450Ligand-mediated, vehicle-free delivery of small RNAsEnhancing miRNA Therapeutics through Vehicle Free DeliveryIVIS Spectrum Grant W81XWH2211085Tumor-Suppressive Functions and Molecular Regulation of LRIG1 in Prostate Cancer and CRPCNovel Therapeutic Strategies to Co-Target Undifferentiated Prostate Cancer (PCa) Stem Cells and Bulk PCa CellsAdministrative CoreDOD Grant NIH S10OD16450Ligand-mediated, vehicle-free delivery of small RNAsEnhancing miRNA Therapeutics through Vehicle Free DeliveryDOD Grant W81XWH2211085

NCI NIH HHS

P30 CA016056

NIH HHS

S10 OD016450

NCI NIH HHS

R01 CA226259

NCI NIH HHS

R01 CA237027

NCI NIH HHS

R01 CA205420

NCI NIH HHS

R01 CA240290

NIH HHS

R01CA240290

NIH HHS

R01CA237027

NIH HHS

1R01CA226259

NIH HHS

1R01CA205420

U.S National Institutes of Health (NIH

R01CA237027

U.S National Institutes of Health (NIH

R01CA240290

U.S National Institutes of Health (NIH

P30CA016056

U.S National Institutes of Health (NIH

1R01CA226259

U.S National Institutes of Health (NIH

1R01CA205420

oswell Park Alliance Foundation (RPAF)

R01CA237027

oswell Park Alliance Foundation (RPAF)

R01CA240290

oswell Park Alliance Foundation (RPAF)

P30CA016056

oswell Park Alliance Foundation (RPAF)

1R01CA226259

oswell Park Alliance Foundation (RPAF)

1R01CA205420

IVIS Spectrum

R01CA237027

IVIS Spectrum

R01CA240290

IVIS Spectrum

P30CA016056

IVIS Spectrum

1R01CA226259

IVIS Spectrum

1R01CA205420

US NIH

R01CA237027

US NIH

R01CA240290

US NIH

P30CA016056

US NIH

1R01CA226259

US NIH

1R01CA205420

DOD

R01CA237027

DOD

R01CA240290

DOD

P30CA016056

DOD

1R01CA226259

DOD

1R01CA205420