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Miftakhova, Regina R.
Alternative names
Publications (6 of 6) Show all publications
Flodbring Larsson, P., Karlsson, R., Sarwar, M., Miftakhova, R. R., Wang, T., Khaja, A. S., . . . Persson, J. L. (2022). FcγRIIIa receptor interacts with androgen receptor and PIP5K1α to promote growth and metastasis of prostate cancer. Molecular Oncology
Open this publication in new window or tab >>FcγRIIIa receptor interacts with androgen receptor and PIP5K1α to promote growth and metastasis of prostate cancer
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2022 (English)In: Molecular Oncology, ISSN 1574-7891, E-ISSN 1878-0261Article in journal (Refereed) Published
Abstract [en]

Low-affinity immunoglobulin gamma Fc region receptor III-A (FcγRIIIa) is a cell surface protein that belongs to a family of Fc receptors that facilitate the protective function of the immune system against pathogens. However, the role of FcγRIIIa in prostate cancer (PCa) progression remained unknown. In this study, we found that FcγRIIIa expression was present in PCa cells and its level was significantly higher in metastatic lesions than in primary tumors from the PCa cohort (P = 0.006). PCa patients with an elevated level of FcγRIIIa expression had poorer biochemical recurrence (BCR)-free survival compared with those with lower FcγRIIIa expression, suggesting that FcγRIIIa is of clinical importance in PCa. We demonstrated that overexpression of FcγRIIIa increased the proliferative ability of PCa cell line C4-2 cells, which was accompanied by the upregulation of androgen receptor (AR) and phosphatidylinositol-4-phosphate 5-kinase alpha (PIP5Kα), which are the key players in controlling PCa progression. Conversely, targeted inhibition of FcγRIIIa via siRNA-mediated knockdown or using its inhibitory antibody suppressed growth of xenograft PC-3 and PC-3M prostate tumors and reduced distant metastasis in xenograft mouse models. We further showed that elevated expression of AR enhanced FcγRIIIa expression, whereas inhibition of AR activity using enzalutamide led to a significant downregulation of FcγRIIIa protein expression. Similarly, inhibition of PIP5K1α decreased FcγRIIIa expression in PCa cells. FcγRIIIa physically interacted with PIP5K1α and AR via formation of protein-protein complexes, suggesting that FcγRIIIa is functionally associated with AR and PIP5K1α in PCa cells. Our study identified FcγRIIIa as an important factor in promoting PCa growth and invasion. Further, the elevated activation of FcγRIII and AR and PIP5K1α pathways may cooperatively promote PCa growth and invasion. Thus, FcγRIIIa may serve as a potential new target for improved treatment of metastatic and castration-resistant PCa.

Place, publisher, year, edition, pages
John Wiley & Sons, 2022
Keywords
AR pathway and antibody-based therapy, FcγRIIIa receptor, PIP5K1α, prostate cancer metastasis, targeted therapy
National Category
Cancer and Oncology
Research subject
Medicine; molecular medicine (genetics and pathology)
Identifiers
urn:nbn:se:umu:diva-192100 (URN)10.1002/1878-0261.13166 (DOI)000745727600001 ()34932854 (PubMedID)2-s2.0-85123504907 (Scopus ID)
Funder
Swedish Cancer Society, 2017-381Swedish Research Council, 2019-01318The Swedish Foundation for International Cooperation in Research and Higher Education (STINT), IG2013-5595The Kempe FoundationsCancerforskningsfonden i Norrland
Available from: 2022-02-01 Created: 2022-02-01 Last updated: 2024-03-20Bibliographically approved
Karlsson, R., Larsson, P., Miftakhova, R. R., Khaja, A. S., Sarwar, M., Semenas, J., . . . Persson, J. L. (2020). Establishment of Prostate Tumor Growth and Metastasis Is Supported by Bone Marrow Cells and Is Mediated by PIP5K1α Lipid Kinase. Cancers, 12(9), Article ID 2719.
Open this publication in new window or tab >>Establishment of Prostate Tumor Growth and Metastasis Is Supported by Bone Marrow Cells and Is Mediated by PIP5K1α Lipid Kinase
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2020 (English)In: Cancers, ISSN 2072-6694, Vol. 12, no 9, article id 2719Article in journal (Refereed) Published
Abstract [en]

Cancer cells facilitate growth and metastasis by using multiple signals from the cancer-associated microenvironment. However, it remains poorly understood whether prostate cancer (PCa) cells may recruit and utilize bone marrow cells for their growth and survival. Furthermore, the regulatory mechanisms underlying interactions between PCa cells and bone marrow cells are obscure. In this study, we isolated bone marrow cells that mainly constituted populations that were positive for CD11b and Gr1 antigens from xenograft PC-3 tumor tissues from athymic nu/nu mice. We found that the tumor-infiltrated cells alone were unable to form tumor spheroids, even with increased amounts and time. By contrast, the tumor-infiltrated cells together with PCa cells formed large numbers of tumor spheroids compared with PCa cells alone. We further utilized xenograft athymic nu/nu mice bearing bone metastatic lesions. We demonstrated that PCa cells were unable to survive and give rise to colony-forming units (CFUs) in media that were used for hematopoietic cell colony-formation unit (CFU) assays. By contrast, PC-3M cells survived when bone marrow cells were present and gave rise to CFUs. Our results showed that PCa cells required bone marrow cells to support their growth and survival and establish bone metastasis in the host environment. We showed that PCa cells that were treated with either siRNA for PIP5K1α or its specific inhibitor, ISA-2011B, were unable to survive and produce tumor spheroids, together with bone marrow cells. Given that the elevated expression of PIP5K1α was specific for PCa cells and was associated with the induced expression of VEGF receptor 2 in PCa cells, our findings suggest that cancer cells may utilize PIP5K1α-mediated receptor signaling to recruit growth factors and ligands from the bone marrow-derived cells. Taken together, our study suggests a new mechanism that enables PCa cells to gain proliferative and invasive advantages within their associated host microenvironment. Therapeutic interventions using PIP5K1α inhibitors may not only inhibit tumor invasion and metastasis but also enhance the host immune system.

Place, publisher, year, edition, pages
MDPI, 2020
Keywords
prostate cancer metastasis, bone marrow cells, PIP5K1α, therapeutic interventions
National Category
Clinical Laboratory Medicine Cancer and Oncology
Research subject
biomedical laboratory science
Identifiers
urn:nbn:se:umu:diva-175507 (URN)10.3390/cancers12092719 (DOI)000582024400001 ()32971916 (PubMedID)2-s2.0-85091205597 (Scopus ID)
Projects
tumor microenvironment
Funder
Swedish Cancer Society, CAN2017/381Swedish Research CouncilCancerforskningsfonden i Norrland
Available from: 2020-09-30 Created: 2020-09-30 Last updated: 2023-03-24Bibliographically approved
Dongre, M., Singh, B., Aung, K. M., Larsson, P., Miftakhova, R. R., Persson, K., . . . Wai, S. N. (2018). Flagella-mediated secretion of a novel Vibrio cholerae cytotoxin affecting both vertebrate and invertebrate hosts. Communications Biology, 1, Article ID 59.
Open this publication in new window or tab >>Flagella-mediated secretion of a novel Vibrio cholerae cytotoxin affecting both vertebrate and invertebrate hosts
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2018 (English)In: Communications Biology, E-ISSN 2399-3642, Vol. 1, article id 59Article in journal (Refereed) Published
Abstract [en]

Using Caenorhabditis elegans as an infection host model for Vibrio cholerae predator interactions, we discovered a bacterial cytotoxin, MakA, whose function as a virulence factor relies on secretion via the flagellum channel in a proton motive force-dependent manner. The MakA protein is expressed from the polycistronic makDCBA (motility-associated killing factor) operon. Bacteria expressing makDCBA induced dramatic changes in intestinal morphology leading to a defecation defect, starvation and death in C. elegans. The Mak proteins also promoted V. cholerae colonization of the zebrafish gut causing lethal infection. A structural model of purified MakA at 1.9 Å resolution indicated similarities to members of a superfamily of bacterial toxins with unknown biological roles. Our findings reveal an unrecognized role for V. cholerae flagella in cytotoxin export that may contribute both to environmental spread of the bacteria by promoting survival and proliferation in encounters with predators, and to pathophysiological effects during infections.

Place, publisher, year, edition, pages
Springer Nature Publishing AG, 2018
National Category
Microbiology in the medical area
Research subject
Infectious Diseases; Molecular Biology
Identifiers
urn:nbn:se:umu:diva-155563 (URN)10.1038/s42003-018-0065-z (DOI)000461126500059 ()30271941 (PubMedID)2-s2.0-85068116757 (Scopus ID)
Available from: 2019-01-22 Created: 2019-01-22 Last updated: 2023-03-23Bibliographically approved
Metzler, V. M., de Brot, S., Robinson, R. S., Jeyapalan, J. N., Rakha, E., Walton, T., . . . Mongan, N. P. (2017). Androgen dependent mechanisms of pro-angiogenic networks in placental and tumor development. Placenta, 56, 79-85
Open this publication in new window or tab >>Androgen dependent mechanisms of pro-angiogenic networks in placental and tumor development
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2017 (English)In: Placenta, ISSN 0143-4004, E-ISSN 1532-3102, Vol. 56, p. 79-85Article in journal (Refereed) Published
Abstract [en]

The placenta and tumors share important characteristics, including a requirement to establish effective angiogenesis. In the case of the placenta, optimal angiogenesis is required to sustain the blood flow required to maintain a successful pregnancy, whereas in tumors establishing new blood supplies is considered a key step in supporting metastases. Therefore the development of novel angiogenesis inhibitors has been an area of active research in oncology. A subset of the molecular processes regulating angiogenesis are well understood in the context of both early placentation and tumorigenesis. In this review we focus on the well-established role of androgen regulation of angiogenesis in cancer and relate these mechanisms to placental angiogenesis. The physiological actions of androgens are mediated by the androgen receptor (AR), a ligand dependent transcription factor. Androgens and the AR are essential for normal male embryonic development, puberty and lifelong health. Defects in androgen signalling are associated with a diverse range of clinical disorders in men and women including disorders of sex development (DSD), polycystic ovary syndrome in women and many cancers. We summarize the diverse molecular mechanisms of androgen regulation of angiogenesis and infer the potential significance of these pathways to normal and pathogenic placental function. Finally, we offer potential research applications of androgen-targeting molecules developed to treat cancer as investigative tools to help further delineate the role of androgen signalling in placental function and maternal and offspring health in animal models.

Place, publisher, year, edition, pages
W B SAUNDERS CO LTD, 2017
Keywords
Nuclear receptor, Epigenetics, Angiogenesis, VEGF
National Category
Medical Biotechnology (with a focus on Cell Biology (including Stem Cell Biology), Molecular Biology, Microbiology, Biochemistry or Biopharmacy)
Identifiers
urn:nbn:se:umu:diva-138211 (URN)10.1016/j.placenta.2017.02.018 (DOI)000406003100015 ()2-s2.0-85013422177 (Scopus ID)
Available from: 2017-08-21 Created: 2017-08-21 Last updated: 2023-03-23Bibliographically approved
Miftakhova, R. R., Hedblom, A., Semenas, J., Robinson, B., Simoulis, A., Malm, J., . . . Persson, J. L. (2016). Cyclin A1 and P450 Aromatase Promote Metastatic Homing and Growth of Stem-like Prostate Cancer Cells in the Bone Marrow. Cancer Research, 76(8), 2453-2464
Open this publication in new window or tab >>Cyclin A1 and P450 Aromatase Promote Metastatic Homing and Growth of Stem-like Prostate Cancer Cells in the Bone Marrow
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2016 (English)In: Cancer Research, ISSN 0008-5472, E-ISSN 1538-7445, Vol. 76, no 8, p. 2453-2464Article in journal (Refereed) Published
Abstract [en]

Bone metastasis is a leading cause of morbidity and mortality in prostate cancer. While cancer stem-like cells have been implicated as a cell of origin for prostate cancer metastasis, the pathways that enable metastatic development at distal sites remain largely unknown. In this study, we illuminate pathways relevant to bone metastasis in this disease. We observed that cyclin A1 (CCNA1) protein expression was relatively higher in prostate cancer metastatic lesions in lymph node, lung, and bone/bone marrow. In both primary and metastatic tissues, cyclin A1 expression was also correlated with aromatase(CYP19A1), a key enzyme that directly regulates the local balance of androgens to estrogens. Cyclin A1 overexpression in the stem-like ALDHhigh subpopulation of PC3M cells, one model of prostate cancer, enabled bone marrow integration and metastatic growth. Further, cells obtained from bone marrow metastatic lesions displayed self-renewal capability in colony forming assays. In the bone marrow, cyclin A1 and aromatase enhanced local bonemarrow-releasing factors, including androgen receptor, estrogen and matrix metalloproteinase MMP9 and promoted the metastatic growth of prostate cancer cells. Moreover, ALDHhigh tumor cells expressing elevated levels of aromatase stimulated tumor/host estrogen production and acquired agrowth advantage in the presence of host bone marrow cells.Overall, these findings suggest that local production of steroids and MMPs in the bone marrow may provide a suitable microenvironment for ALDHhigh prostate cancer cells to establish metastatic growths, offering new approaches to therapeutically target bone metastases.

Place, publisher, year, edition, pages
American Association for Cancer Research (AACR), 2016
National Category
Cancer and Oncology
Identifiers
urn:nbn:se:umu:diva-169641 (URN)10.1158/0008-5472.CAN-15-2340 (DOI)000374170700039 ()
Available from: 2020-04-14 Created: 2020-04-14 Last updated: 2022-12-15Bibliographically approved
Sarwar, M., Semenas, J., Miftakhova, R., Simoulis, A., Robinson, B., Wingren, A. G., . . . Persson, J. L. (2016). Targeted suppression of AR-V7 using PIP5K1 alpha inhibitor overcomes enzalutamide resistance in prostate cancer cells. Oncotarget, 7(39), 63065-63081
Open this publication in new window or tab >>Targeted suppression of AR-V7 using PIP5K1 alpha inhibitor overcomes enzalutamide resistance in prostate cancer cells
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2016 (English)In: Oncotarget, E-ISSN 1949-2553, Vol. 7, no 39, p. 63065-63081Article in journal (Refereed) Published
Abstract [en]

One mechanism of resistance of prostate cancer (PCa) to enzalutamide (MDV3100) treatment is the increased expression of AR variants lacking the ligand binding-domain, the best characterized of which is AR-V7. We have previously reported that Phosphatidylinositol-4-phosphate 5-kinase alpha (PIP5K alpha), is a lipid kinase that links to CDK1 and AR pathways. The discovery of PIP5K alpha inhibitor highlight the potential of PIP5K1 alpha as a drug target in PCa. In this study, we show that AR-V7 expression positively correlates with PIP5K1 alpha in tumor specimens from PCa patients. Overexpression of AR-V7 increases PIP5K1 alpha, promotes rapid growth of PCa in xenograft mice, whereas inhibition of PIP5K1 alpha by its inhibitor ISA-2011B suppresses the growth and invasiveness of xenograft tumors overexpressing AR-V7. PIP5K1 alpha is a key co-factor for both AR-V7 and AR, which are present as protein-protein complexes predominantly in the nucleus of PCa cells. In addition, PIP5K1 alpha and CDK1 influence AR-V7 expression also through AKT-associated mechanism dependent on PTEN-status. ISA-2011B disrupts protein stabilization of AR-V7 which is dependent on PIP5K1 alpha, leading to suppression of invasive growth of AR-V7-high tumors in xenograft mice. Our study suggests that combination of enzalutamide and PIP5K1 alpha may have a significant impact on refining therapeutic strategies to circumvent resistance to antiandrogen therapies.

Keywords
Prostate cancer metastasis, enzalutamide resistance, lipid kinase inhibitor, AR-V7, PIP5K1α
National Category
Cancer and Oncology
Identifiers
urn:nbn:se:umu:diva-128475 (URN)10.18632/oncotarget.11757 (DOI)000387167800020 ()2-s2.0-84993967394 (Scopus ID)
Available from: 2016-12-15 Created: 2016-12-05 Last updated: 2024-01-17Bibliographically approved
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