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Published in: Journal of Translational Medicine 1/2022

Open Access 01-12-2022 | Pancreatic Cancer | Research

MICAL1 facilitates pancreatic cancer proliferation, migration, and invasion by activating WNT/β-catenin pathway

Authors: Kun Cai, Lu Deng, Dijie Zheng, Lin Li, Zhiwei He, Chao Yu

Published in: Journal of Translational Medicine | Issue 1/2022

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Abstract

Background

MICAL1 is involved in the malignant processes of several types of cancer; however, the role of MICAL1 in pancreatic cancer (PC) has not been well-characterized. This study aimed to investigate the expression and function of MICAL1 in PC.

Methods

RT-qPCR and immunohistochemistry were used to detect MICAL1 expression in PC and adjacent nontumor tissues. Cell Counting Kit-8, EdU, clone formation, wound healing, and Transwell assays as well as animal models were used to investigate the effects of overexpression or inhibition of MICAL1 expression on the proliferation, invasion, and metastasis of PC cells. RNA-seq was used to explore the main pathway underlying the functions of MICAL1. Proteomics, mass spectrometry, and co-immunoprecipitation assays were used to investigate the interaction of proteins with MICAL1. Rescue experiments were conducted to validate these findings.

Results

Both MICAL1 mRNA and protein levels were upregulated in PC tissues compared with matched adjacent nontumor tissues. The expression level of MICAL1 was associated with the proliferative and metastatic status of PC. Repression of MICAL1 significantly inhibited PC cell growth, migration, and invasion in vitro and in vivo. RNA sequencing analysis indicated that MICAL1 was closely correlated with the WNT pathway. Overexpression of MICAL1 (1) promoted the phosphorylation of TBC1D1 at the Ser660 site, (2) facilitated the distribution of FZD7 on the cytomembrane, (3) inhibited the degradation of FZD7 in the lysosome, and (4) activated the WNT pathway.

Conclusions

MICAL1 was upregulated in PC and involved in stimulating the progression of PC cells by activating the WNT/β-catenin signaling pathway. Therefore, MICAL1 is a potential therapeutic target for PC.
Appendix
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Literature
2.
go back to reference Jain T, Dudeja V. The war against pancreatic cancer in 2020 - advances on all fronts. Nat Rev Gastroenterol Hepatol. 2021;18(2):99–100.CrossRefPubMed Jain T, Dudeja V. The war against pancreatic cancer in 2020 - advances on all fronts. Nat Rev Gastroenterol Hepatol. 2021;18(2):99–100.CrossRefPubMed
3.
go back to reference Chen X, Zeh HJ, Kang R, Kroemer G, Tang D. Cell death in pancreatic cancer: from pathogenesis to therapy. Nat Rev Gastroenterol Hepatol. 2021;18(11):804–23.CrossRefPubMed Chen X, Zeh HJ, Kang R, Kroemer G, Tang D. Cell death in pancreatic cancer: from pathogenesis to therapy. Nat Rev Gastroenterol Hepatol. 2021;18(11):804–23.CrossRefPubMed
8.
go back to reference Zhou Y, Gunput RA, Adolfs Y, Pasterkamp RJ. MICALs in control of the cytoskeleton, exocytosis, and cell death. Cell Mol Life Sci. 2011;68(24):4033–44.CrossRefPubMedPubMedCentral Zhou Y, Gunput RA, Adolfs Y, Pasterkamp RJ. MICALs in control of the cytoskeleton, exocytosis, and cell death. Cell Mol Life Sci. 2011;68(24):4033–44.CrossRefPubMedPubMedCentral
9.
10.
go back to reference Deng W, Wang Y, Zhao S, et al. MICAL1 facilitates breast cancer cell proliferation via ROS-sensitive ERK/cyclin D pathway. J Cell Mol Med. 2018;22(6):3108–18.CrossRefPubMedPubMedCentral Deng W, Wang Y, Zhao S, et al. MICAL1 facilitates breast cancer cell proliferation via ROS-sensitive ERK/cyclin D pathway. J Cell Mol Med. 2018;22(6):3108–18.CrossRefPubMedPubMedCentral
11.
go back to reference Gu H, Li Y, Cui X, et al. MICAL1 inhibits colorectal cancer cell migration and proliferation by regulating the EGR1/beta-catenin signaling pathway. Biochem Pharmacol. 2021;195:114870.CrossRefPubMed Gu H, Li Y, Cui X, et al. MICAL1 inhibits colorectal cancer cell migration and proliferation by regulating the EGR1/beta-catenin signaling pathway. Biochem Pharmacol. 2021;195:114870.CrossRefPubMed
12.
go back to reference McGarry DJ, Armstrong G, Castino G, et al. MICAL1 regulates actin cytoskeleton organization, directional cell migration and the growth of human breast cancer cells as orthotopic xenograft tumours. Cancer Lett. 2021;519:226–36.CrossRefPubMed McGarry DJ, Armstrong G, Castino G, et al. MICAL1 regulates actin cytoskeleton organization, directional cell migration and the growth of human breast cancer cells as orthotopic xenograft tumours. Cancer Lett. 2021;519:226–36.CrossRefPubMed
13.
go back to reference Aggarwal PK, Veron D, Thomas DB, et al. Semaphorin3a promotes advanced diabetic nephropathy. Diabetes. 2015;64(5):1743–59.CrossRefPubMed Aggarwal PK, Veron D, Thomas DB, et al. Semaphorin3a promotes advanced diabetic nephropathy. Diabetes. 2015;64(5):1743–59.CrossRefPubMed
14.
go back to reference Qin XB, Zhang WJ, Zou L, Huang PJ, Sun BJ. Identification potential biomarkers in pulmonary tuberculosis and latent infection based on bioinformatics analysis. BMC Infect Dis. 2016;16(1):500.CrossRefPubMedPubMedCentral Qin XB, Zhang WJ, Zou L, Huang PJ, Sun BJ. Identification potential biomarkers in pulmonary tuberculosis and latent infection based on bioinformatics analysis. BMC Infect Dis. 2016;16(1):500.CrossRefPubMedPubMedCentral
15.
go back to reference Dazzo E, Rehberg K, Michelucci R, et al. Mutations in MICAL-1cause autosomal-dominant lateral temporal epilepsy. Ann Neurol. 2018;83(3):483–93.CrossRefPubMed Dazzo E, Rehberg K, Michelucci R, et al. Mutations in MICAL-1cause autosomal-dominant lateral temporal epilepsy. Ann Neurol. 2018;83(3):483–93.CrossRefPubMed
16.
go back to reference Konstantinidis K, Bezzerides VJ, Lai L, et al. MICAL1 constrains cardiac stress responses and protects against disease by oxidizing CaMKII. J Clin Invest. 2020;130(9):4663–78.CrossRefPubMedPubMedCentral Konstantinidis K, Bezzerides VJ, Lai L, et al. MICAL1 constrains cardiac stress responses and protects against disease by oxidizing CaMKII. J Clin Invest. 2020;130(9):4663–78.CrossRefPubMedPubMedCentral
17.
go back to reference Zhao S, Min P, Liu L, et al. NEDD9 facilitates hypoxia-induced gastric cancer cell migration via MICAL1 related Rac1 activation. Front Pharmacol. 2019;10:291.CrossRefPubMedPubMedCentral Zhao S, Min P, Liu L, et al. NEDD9 facilitates hypoxia-induced gastric cancer cell migration via MICAL1 related Rac1 activation. Front Pharmacol. 2019;10:291.CrossRefPubMedPubMedCentral
20.
go back to reference Schulte G, Wright SC. Frizzleds as GPCRs—more conventional than we thought! Trends Pharmacol Sci. 2018;39(9):828–42.CrossRefPubMed Schulte G, Wright SC. Frizzleds as GPCRs—more conventional than we thought! Trends Pharmacol Sci. 2018;39(9):828–42.CrossRefPubMed
22.
go back to reference Sun Y, Wang W, Zhao C. Frizzled receptors in tumors, focusing on signaling, roles, modulation mechanisms, and targeted therapies. Oncol Res. 2021;28(6):661–74.CrossRefPubMedPubMedCentral Sun Y, Wang W, Zhao C. Frizzled receptors in tumors, focusing on signaling, roles, modulation mechanisms, and targeted therapies. Oncol Res. 2021;28(6):661–74.CrossRefPubMedPubMedCentral
23.
go back to reference Schulte G. Frizzleds and WNT/beta-catenin signaling–The black box of ligand-receptor selectivity, complex stoichiometry and activation kinetics. Eur J Pharmacol. 2015;763(Pt B):191–5.CrossRefPubMed Schulte G. Frizzleds and WNT/beta-catenin signaling–The black box of ligand-receptor selectivity, complex stoichiometry and activation kinetics. Eur J Pharmacol. 2015;763(Pt B):191–5.CrossRefPubMed
25.
go back to reference Advancing on pancreatic cancer. Nat Rev Gastroenterol Hepatol. 2021;18(7):447.CrossRef Advancing on pancreatic cancer. Nat Rev Gastroenterol Hepatol. 2021;18(7):447.CrossRef
26.
go back to reference Wioland H, Fremont S, Guichard B, Echard A, Jegou A, Romet-Lemonne G. Actin filament oxidation by MICAL1 suppresses protections from cofilin-induced disassembly. EMBO Rep. 2021;22(2):e50965.CrossRefPubMedPubMedCentral Wioland H, Fremont S, Guichard B, Echard A, Jegou A, Romet-Lemonne G. Actin filament oxidation by MICAL1 suppresses protections from cofilin-induced disassembly. EMBO Rep. 2021;22(2):e50965.CrossRefPubMedPubMedCentral
27.
go back to reference Fremont S, Romet-Lemonne G, Houdusse A, Echard A. Emerging roles of MICAL family proteins—from actin oxidation to membrane trafficking during cytokinesis. J Cell Sci. 2017;130(9):1509–17.PubMed Fremont S, Romet-Lemonne G, Houdusse A, Echard A. Emerging roles of MICAL family proteins—from actin oxidation to membrane trafficking during cytokinesis. J Cell Sci. 2017;130(9):1509–17.PubMed
28.
go back to reference Lee BC, Peterfi Z, Hoffmann FW, et al. MsrB1 and MICALs regulate actin assembly and macrophage function via reversible stereoselective methionine oxidation. Mol Cell. 2013;51(3):397–404.CrossRefPubMedPubMedCentral Lee BC, Peterfi Z, Hoffmann FW, et al. MsrB1 and MICALs regulate actin assembly and macrophage function via reversible stereoselective methionine oxidation. Mol Cell. 2013;51(3):397–404.CrossRefPubMedPubMedCentral
29.
go back to reference Bai J, Wioland H, Advedissian T, Cuvelier F, Romet-Lemonne G, Echard A. Actin reduction by MsrB2 is a key component of the cytokinetic abscission checkpoint and prevents tetraploidy. Proc Natl Acad Sci U S A. 2020;117(8):4169–79.CrossRefPubMedPubMedCentral Bai J, Wioland H, Advedissian T, Cuvelier F, Romet-Lemonne G, Echard A. Actin reduction by MsrB2 is a key component of the cytokinetic abscission checkpoint and prevents tetraploidy. Proc Natl Acad Sci U S A. 2020;117(8):4169–79.CrossRefPubMedPubMedCentral
30.
go back to reference Loria R, Bon G, Perotti V, et al. Sema6A and Mical1 control cell growth and survival of BRAFV600E human melanoma cells. Oncotarget. 2015;6(5):2779–93.CrossRefPubMed Loria R, Bon G, Perotti V, et al. Sema6A and Mical1 control cell growth and survival of BRAFV600E human melanoma cells. Oncotarget. 2015;6(5):2779–93.CrossRefPubMed
31.
go back to reference Frasa MA, Koessmeier KT, Ahmadian MR, Braga VM. Illuminating the functional and structural repertoire of human TBC/RABGAPs. Nat Rev Mol Cell Biol. 2012;13(2):67–73.CrossRefPubMed Frasa MA, Koessmeier KT, Ahmadian MR, Braga VM. Illuminating the functional and structural repertoire of human TBC/RABGAPs. Nat Rev Mol Cell Biol. 2012;13(2):67–73.CrossRefPubMed
32.
go back to reference Gray JL, von Delft F, Brennan PE. Targeting the small GTPase superfamily through their regulatory proteins. Angew Chem Int Ed Engl. 2020;59(16):6342–66.CrossRefPubMedPubMedCentral Gray JL, von Delft F, Brennan PE. Targeting the small GTPase superfamily through their regulatory proteins. Angew Chem Int Ed Engl. 2020;59(16):6342–66.CrossRefPubMedPubMedCentral
33.
34.
go back to reference Bogan JS. Regulation of glucose transporter translocation in health and diabetes. Annu Rev Biochem. 2012;81:507–32.CrossRefPubMed Bogan JS. Regulation of glucose transporter translocation in health and diabetes. Annu Rev Biochem. 2012;81:507–32.CrossRefPubMed
35.
go back to reference Hook SC, Chadt A, Heesom KJ, et al. TBC1D1 interacting proteins, VPS13A and VPS13C, regulate GLUT4 homeostasis in C2C12 myotubes. Sci Rep. 2020;10(1):17953.CrossRefPubMedPubMedCentral Hook SC, Chadt A, Heesom KJ, et al. TBC1D1 interacting proteins, VPS13A and VPS13C, regulate GLUT4 homeostasis in C2C12 myotubes. Sci Rep. 2020;10(1):17953.CrossRefPubMedPubMedCentral
36.
go back to reference Jaldin-Fincati JR, Pavarotti M, Frendo-Cumbo S, Bilan PJ, Klip A. Update on GLUT4 vesicle traffic: a cornerstone of insulin action. Trends Endocrinol Metab. 2017;28(8):597–611.CrossRefPubMed Jaldin-Fincati JR, Pavarotti M, Frendo-Cumbo S, Bilan PJ, Klip A. Update on GLUT4 vesicle traffic: a cornerstone of insulin action. Trends Endocrinol Metab. 2017;28(8):597–611.CrossRefPubMed
37.
go back to reference Chadt A, Leicht K, Deshmukh A, et al. Tbc1d1 mutation in lean mouse strain confers leanness and protects from diet-induced obesity. Nat Genet. 2008;40(11):1354–9.CrossRefPubMed Chadt A, Leicht K, Deshmukh A, et al. Tbc1d1 mutation in lean mouse strain confers leanness and protects from diet-induced obesity. Nat Genet. 2008;40(11):1354–9.CrossRefPubMed
38.
go back to reference Benninghoff T, Espelage L, Eickelschulte S, et al. The RabGAPs TBC1D1 and TBC1D4 control uptake of long-chain fatty acids into skeletal muscle via fatty acid transporter SLC27A4/FATP4. Diabetes. 2020;69(11):2281–93.CrossRefPubMed Benninghoff T, Espelage L, Eickelschulte S, et al. The RabGAPs TBC1D1 and TBC1D4 control uptake of long-chain fatty acids into skeletal muscle via fatty acid transporter SLC27A4/FATP4. Diabetes. 2020;69(11):2281–93.CrossRefPubMed
40.
Metadata
Title
MICAL1 facilitates pancreatic cancer proliferation, migration, and invasion by activating WNT/β-catenin pathway
Authors
Kun Cai
Lu Deng
Dijie Zheng
Lin Li
Zhiwei He
Chao Yu
Publication date
01-12-2022
Publisher
BioMed Central
Published in
Journal of Translational Medicine / Issue 1/2022
Electronic ISSN: 1479-5876
DOI
https://doi.org/10.1186/s12967-022-03749-1

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