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lentiviral vector plko 1 shrna control shctrl  (Addgene inc)


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    Addgene inc lentiviral vector plko 1 shrna control shctrl
    Lentiviral Vector Plko 1 Shrna Control Shctrl, supplied by Addgene inc, used in various techniques. Bioz Stars score: 96/100, based on 377 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/plko+1+shctrl/pLKO%2E1+-+TRC+control+(Plasmid+%2310879)/pm41596422-229-0-6
    Average 96 stars, based on 377 article reviews
    lentiviral vector plko 1 shrna control shctrl - by Bioz Stars, 2026-09
    96/100 stars

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    Related Articles

    Transduction:

    Article Title: OPA1 protects intervertebral disc and knee joint health in aged mice by maintaining the structure and metabolic functions of mitochondria
    Article Snippet: Primary NP cells from Sprague Dawley (Charles River), were obtained and cultured in antibiotic supplemented Dulbecco’s modified Eagle medium (DMEM) and 10% FBS ( ). .. To explore role of OPA1, lentiviral particle production and viral transduction LV-Sh Opa1 clone #1 (TRCN0000091111 ) and LV-SH Opa1 clone #2 (TRCN0000348537) (Sigma, St. Louis, MO, USA) and pLKO.1 ShCtrl and psPAX2 (#12260) and pMD2G (#12259) (Addgene, Cambridge, MA, USA) were used. ..

    Article Title: The mitophagy receptor BNIP3 is critical for the regulation of metabolic homeostasis and mitochondrial function in the nucleus pulposus cells of the intervertebral disc
    Article Snippet: Primary NP cells from Sprague Dawley (Charles River, strain 400), prkn / park2 KO and WT (Envigo, HsdSage:LE- Park2 em1Sage ) and bnip3 KO-mitoQC and WT-mitoQC reporter mice were isolated and maintained in Dulbecco’s modified Eagle medium (DMEM; Sigma, D6046) and 10% FBS supplemented with antibiotics [ ]. .. To investigate effects of BNIP3, lentiviral particle production and viral transduction LV-Sh Bnip3 clone #1 (Sigma, TRCN0000373999) and LV-Sh Bnip3 clone #2 (Sigma, TRCN00000009691) and pLKO.1 shCtrl (Addgene, 10,878, Jason Moffat, Cambridge, MA) and psPAX2 (Addgene, 12,260; deposited by Didier Trono, Lausanne) and pMD2.G (Addgene, 12,259; deposited by Didier Trono) were used. .. HEK 293 T cells (ATCC, CRL-3216) were plated in 10-cm plates (5x10 6 cells/plate) in DMEM with 10% heat-inactivated FBS 1 day before transfection.

    Article Title: Transient Sox9 Expression Facilitates Resistance to Androgen-Targeted Therapy in Prostate Cancer
    Article Snippet: Transient Sox9 Expression Facilitates Resistance to Androgen Targeted Therapy in 1 Prostate Cancer 2 3 Mannan Nouri1,2, Shabnam Massah1,2, Josselin Caradec1,2, Amy A. Lubik1,2, Na 4 Li1,2, Sarah Truong1, Ahn R. Lee1,2, Ladan Fazli1, Varune R. Ramnarine1,2, Jessica 5 M. Lovnicki1,2, Jackson Moore1, Mike Wang1, Jane Foo1, Martin E. Gleave1,2, Brett 6 G. Hollier3, Colleen Nelson1,2,3, Colin Collins1,2, Xuesen Dong1,2 and Ralph 7 Buttyan1,2* 8 9 1Vancouver Prostate Centre, Vancouver, Canada 10 2Department of Urologic Sciences, University of British Columbia, Vancouver, Canada 11 3Institute of Health and Biomedical Innovation, Queensland University of Technology, 12 Brisbane, Australia 13 14 Running Title: Transient Sox9 Facilitates Prostate Cancer Progression 15 16 *Corresponding Author: Ralph Buttyan; Vancouver Prostate Centre, 2660 Oak Street, 17 Vancouver, BC, Canada V6H-3Z6; Phone: (604)875-4111, ext21758; Fax: (604)87518 5654; E-mail: rbuttyan@prostatecentre.com 19 20 The authors declare no conflicts of interest.

    Article Title: The mitophagy receptor BNIP3 is critical for the regulation of metabolic homeostasis and mitochondrial function in the nucleus pulposus cells of the intervertebral disc.
    Article Snippet: Cell isolation, treatments, and hypoxic culture Primary NP cells from Sprague Dawley (Charles River, strain 400), prkn/park2 KO and WT (Envigo, HsdSage:LEPark2em1Sage) and bnip3 KO-mitoQC and WT-mitoQC reporter mice were isolated and maintained in Dulbecco’s modified Eagle medium (DMEM; Sigma, D6046) and 10% FBS supplemented with antibiotics [79]. .. To investigate effects of BNIP3, lentiviral particle production and viral transduction LV-Sh Bnip3 clone #1 (Sigma, TRCN0000373999) and LV-ShBnip3 clone #2 (Sigma, TRCN00000009691) and pLKO.1 shCtrl (Addgene, 10,878, Jason Moffat, Cambridge, MA) and psPAX2 (Addgene, 12,260; deposited by Didier Trono, Lausanne) and pMD2.G (Addgene, 12,259; deposited by Didier Trono) were used. .. HEK 293 T cells (ATCC, CRL3216) were plated in 10-cm plates (5x106 cells/plate) in DMEM with 10% heat-inactivated FBS 1 day before transfection.

    other:

    Article Title: Integrative characterization of MYC RNA-binding function
    Article Snippet: REAGENT or RESOURCE SOURCE IDENTIFIER BCA Protein Assay Kit Thermo Scientific Cat# 23225 ECL Western Blotting Substrate Thermo Scientific Cat# 32106 RNA Clean & Concentrator-5 Zymo Research Cat# R1016 DNA Clean & Concentrator-5 Zymo Research Cat# D4014 RNeasy Mini Kit Qiagen Cat# 74104 MinElute Gel Extraction Kit Qiagen Cat# 28604 QIAprep Spin Miniprep Kit Qiagen Cat# 27106 QIAquick PCR Purification Kit Qiagen Cat# 28106 DNeasy Blood &Tissue Kit Qiagen Cat# 69504 Qubit 1× dsDNA HS Assay Kit Invitrogen Cat# Q33231 Qubit Protein BR Assay Kit Invitrogen Cat# A50668 ssDNA Assay Kit Invitrogen Cat# Q10212 Deposited Data eCLIP-seq, endogenous MYC This study GEO: GSE252697 FLAG-MYC eCLIP-seq, MCF-7 This study GEO: GSE200344 MYC/TBP rChIP-seq This study GEO: GSE252695 MYC/TBP rCUT&RUN This study GEO: GSE252694 FLAG-MYC eCLIP-seq, U2OS This study GEO: GSE273775 FLAG-MYC ChIP-Rx This study GEO: GSE252696 MAX ChIP-Rx This study GEO: GSE273776 RNA-seq This study GEO: GSE273777 Unprocessed raw images This study Mendeley Data: https://doi.org/10.17632/3fc4n7j3g9.1 Experimental models: cell lines NIH/3T3 ATCC Cat# CRL-1658; RRID: CVCL_0594 MCF10A ATCC Cat# CRL-10317; RRID: CVCL_0598 K562 ATCC Cat# CCL-243; RRID: CVCL_0004 HepG2 ATCC Cat# HB-8065; RRID: CVCL_0027 U2OS ATCC Cat# HTB-96; RRID: CVCL_0042 HCT116 ATCC Cat# CCL-247; RRID: CVCL_0291 MCF-7 ATCC Cat# HTB-22; RRID: CVCL_0031 HEK293T ATCC Cat# CRL-3216; RRID: CVCL_0063 Oligonucleotides See Table S8 for oligonucleotides This study N/A Recombinant DNA psPAX2 Didier Trono Addgene# 12260 pCMV-VSV-G Stewart et al. 54 Addgene# 8454 pLKO.1 TRC Cloning Vector Moffat et al. 55 Addgene# 10878 pLKO.1 shCtrl This study N/A pLKO.1 shMYC This study N/A pLVX-IRES-hygro Clontech Cat# 632185 pLVX-CMV-Flag-IRES-hygro This study N/A pLVX-Flag-MYC WT shRNA-resistant This study N/A pLVX-Flag-MYC KRR3A shRNA-resistant This study N/A pLVX-Flag-MYC 7A shRNA-resistant This study N/A pLIX_403 David Root Addgene# 41395 pLIX-Flag-MYC WT doxycycline-inducible This study N/A pLIX-Flag-MYC KRR3A doxycycline-inducible This study N/A (Continued on next page) Cell Genomics 5, 100878, July 9, 2025 e3 Article ll OPEN ACCESS

    Article Title: Hypoxic regulation of mitochondrial metabolism and mitophagy in nucleus pulposus cells is dependent on HIF-1α -BNIP3 axis
    Article Snippet: Sections were deparaffinized and citrate buffer pH 6 (Vector Labora-tories, H-3301) was used for antigen retrieval.

    Article Title: Integrative characterization of MYC RNA-binding function.
    Article Snippet: REAGENT or RESOURCE SOURCE IDENTIFIER BCA Protein Assay Kit Thermo Scientific Cat# 23225 ECL Western Blotting Substrate Thermo Scientific Cat# 32106 RNA Clean & Concentrator-5 Zymo Research Cat# R1016 DNA Clean & Concentrator-5 Zymo Research Cat# D4014 RNeasy Mini Kit Qiagen Cat# 74104 MinElute Gel Extraction Kit Qiagen Cat# 28604 QIAprep Spin Miniprep Kit Qiagen Cat# 27106 QIAquick PCR Purification Kit Qiagen Cat# 28106 DNeasy Blood &Tissue Kit Qiagen Cat# 69504 Qubit 1× dsDNA HS Assay Kit Invitrogen Cat# Q33231 Qubit Protein BR Assay Kit Invitrogen Cat# A50668 ssDNA Assay Kit Invitrogen Cat# Q10212 Deposited Data eCLIP-seq, endogenous MYC This study GEO: GSE252697 FLAG-MYC eCLIP-seq, MCF-7 This study GEO: GSE200344 MYC/TBP rChIP-seq This study GEO: GSE252695 MYC/TBP rCUT&RUN This study GEO: GSE252694 FLAG-MYC eCLIP-seq, U2OS This study GEO: GSE273775 FLAG-MYC ChIP-Rx This study GEO: GSE252696 MAX ChIP-Rx This study GEO: GSE273776 RNA-seq This study GEO: GSE273777 Unprocessed raw images This study Mendeley Data: https://doi.org/10.17632/3fc4n7j3g9.1 Experimental models: cell lines NIH/3T3 ATCC Cat# CRL-1658; RRID: CVCL_0594 MCF10A ATCC Cat# CRL-10317; RRID: CVCL_0598 K562 ATCC Cat# CCL-243; RRID: CVCL_0004 HepG2 ATCC Cat# HB-8065; RRID: CVCL_0027 U2OS ATCC Cat# HTB-96; RRID: CVCL_0042 HCT116 ATCC Cat# CCL-247; RRID: CVCL_0291 MCF-7 ATCC Cat# HTB-22; RRID: CVCL_0031 HEK293T ATCC Cat# CRL-3216; RRID: CVCL_0063 Oligonucleotides See Table S8 for oligonucleotides This study N/A Recombinant DNA psPAX2 Didier Trono Addgene# 12260 pCMV-VSV-G Stewart et al.54 Addgene# 8454 pLKO.1 TRC Cloning Vector Moffat et al.55 Addgene# 10878 pLKO.1 shCtrl This study N/A pLKO.1 shMYC This study N/A pLVX-IRES-hygro Clontech Cat# 632185 pLVX-CMV-Flag-IRES-hygro This study N/A pLVX-Flag-MYCWT shRNA-resistant This study N/A pLVX-Flag-MYCKRR3A shRNA-resistant This study N/A pLVX-Flag-MYC7A shRNA-resistant This study N/A pLIX_403 David Root Addgene# 41395 pLIX-Flag-MYCWT doxycycline-inducible This study N/A pLIX-Flag-MYCKRR3A doxycycline-inducible This study N/A (Continued on next page) Cell Genomics 5, 100878, July 9, 2025 e3 Article ll OPEN ACCESS

    Plasmid Preparation:

    Article Title: Transient Sox9 Expression Facilitates Resistance to Androgen-Targeted Therapy in Prostate Cancer
    Article Snippet: Transient Sox9 Expression Facilitates Resistance to Androgen Targeted Therapy in 1 Prostate Cancer 2 3 Mannan Nouri1,2, Shabnam Massah1,2, Josselin Caradec1,2, Amy A. Lubik1,2, Na 4 Li1,2, Sarah Truong1, Ahn R. Lee1,2, Ladan Fazli1, Varune R. Ramnarine1,2, Jessica 5 M. Lovnicki1,2, Jackson Moore1, Mike Wang1, Jane Foo1, Martin E. Gleave1,2, Brett 6 G. Hollier3, Colleen Nelson1,2,3, Colin Collins1,2, Xuesen Dong1,2 and Ralph 7 Buttyan1,2* 8 9 1Vancouver Prostate Centre, Vancouver, Canada 10 2Department of Urologic Sciences, University of British Columbia, Vancouver, Canada 11 3Institute of Health and Biomedical Innovation, Queensland University of Technology, 12 Brisbane, Australia 13 14 Running Title: Transient Sox9 Facilitates Prostate Cancer Progression 15 16 *Corresponding Author: Ralph Buttyan; Vancouver Prostate Centre, 2660 Oak Street, 17 Vancouver, BC, Canada V6H-3Z6; Phone: (604)875-4111, ext21758; Fax: (604)87518 5654; E-mail: rbuttyan@prostatecentre.com 19 20 The authors declare no conflicts of interest.



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    ( A ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70. Neddylated or non-neddylated CUL1 were detected by immunoblotting with anti-CUL1 antibody. The differences in the deneddylation activity of CSN were illustrated by estimating the percentage of non-neddylated CUL1 to total CUL1 at each time point based on protein band intensities. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.014) and 40 min ( P = 0.044). ( B ) In vitro deneddylation assay. CSN deneddylation activity in the presence of 500 nM HSC70 with or without 5 µM NR peptide. The bottom graphs show the mean ± s.e.m. ** P < 0.01 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.005) and 40 min ( P = 0.0023). ( C ) In vitro pulldown assay. A mixture containing Strep-tagged CSN and GST-tagged HSC70 WT or E175S mutant was subjected to immunoprecipitation with Streptactin Sepharose. ( D ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70 E175S. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 40 min ( P = 0.036). ( E ) Immunoblotting analysis of the established HSC70 <t>knockdown</t> <t>(shHSC70)</t> cell line. GAPDH protein was used as an internal control, and bar graphs show the relative expression level of HSC70 in shHSC70 cells to those in <t>shCtrl</t> cells ( n = 6 independent expermeriments), and the ratio of neddylated CUL1 to total CUL1 in shCtrl and shHSC70 cells ( n = 9 independent experiments). The box represents the interquartile range (IQR), with the bottom and top edges indicating the 25th and 75th percentiles, respectively. The horizontal line within the box denotes the median (50th percentile). The whiskers extend to the minimum and maximum values from the box. Data points are shown individually. ( F ) Immunoblotting analysis of shCtrl and shHSC70 cells with or without transient FLAG-HSC70 expression. .
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    ( A ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70. Neddylated or non-neddylated CUL1 were detected by immunoblotting with anti-CUL1 antibody. The differences in the deneddylation activity of CSN were illustrated by estimating the percentage of non-neddylated CUL1 to total CUL1 at each time point based on protein band intensities. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.014) and 40 min ( P = 0.044). ( B ) In vitro deneddylation assay. CSN deneddylation activity in the presence of 500 nM HSC70 with or without 5 µM NR peptide. The bottom graphs show the mean ± s.e.m. ** P < 0.01 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.005) and 40 min ( P = 0.0023). ( C ) In vitro pulldown assay. A mixture containing Strep-tagged CSN and GST-tagged HSC70 WT or E175S mutant was subjected to immunoprecipitation with Streptactin Sepharose. ( D ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70 E175S. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 40 min ( P = 0.036). ( E ) Immunoblotting analysis of the established HSC70 <t>knockdown</t> <t>(shHSC70)</t> cell line. GAPDH protein was used as an internal control, and bar graphs show the relative expression level of HSC70 in shHSC70 cells to those in <t>shCtrl</t> cells ( n = 6 independent expermeriments), and the ratio of neddylated CUL1 to total CUL1 in shCtrl and shHSC70 cells ( n = 9 independent experiments). The box represents the interquartile range (IQR), with the bottom and top edges indicating the 25th and 75th percentiles, respectively. The horizontal line within the box denotes the median (50th percentile). The whiskers extend to the minimum and maximum values from the box. Data points are shown individually. ( F ) Immunoblotting analysis of shCtrl and shHSC70 cells with or without transient FLAG-HSC70 expression. .
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    ( A ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70. Neddylated or non-neddylated CUL1 were detected by immunoblotting with anti-CUL1 antibody. The differences in the deneddylation activity of CSN were illustrated by estimating the percentage of non-neddylated CUL1 to total CUL1 at each time point based on protein band intensities. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.014) and 40 min ( P = 0.044). ( B ) In vitro deneddylation assay. CSN deneddylation activity in the presence of 500 nM HSC70 with or without 5 µM NR peptide. The bottom graphs show the mean ± s.e.m. ** P < 0.01 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.005) and 40 min ( P = 0.0023). ( C ) In vitro pulldown assay. A mixture containing Strep-tagged CSN and GST-tagged HSC70 WT or E175S mutant was subjected to immunoprecipitation with Streptactin Sepharose. ( D ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70 E175S. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 40 min ( P = 0.036). ( E ) Immunoblotting analysis of the established HSC70 <t>knockdown</t> <t>(shHSC70)</t> cell line. GAPDH protein was used as an internal control, and bar graphs show the relative expression level of HSC70 in shHSC70 cells to those in <t>shCtrl</t> cells ( n = 6 independent expermeriments), and the ratio of neddylated CUL1 to total CUL1 in shCtrl and shHSC70 cells ( n = 9 independent experiments). The box represents the interquartile range (IQR), with the bottom and top edges indicating the 25th and 75th percentiles, respectively. The horizontal line within the box denotes the median (50th percentile). The whiskers extend to the minimum and maximum values from the box. Data points are shown individually. ( F ) Immunoblotting analysis of shCtrl and shHSC70 cells with or without transient FLAG-HSC70 expression. .
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    Image Search Results


    ( A ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70. Neddylated or non-neddylated CUL1 were detected by immunoblotting with anti-CUL1 antibody. The differences in the deneddylation activity of CSN were illustrated by estimating the percentage of non-neddylated CUL1 to total CUL1 at each time point based on protein band intensities. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.014) and 40 min ( P = 0.044). ( B ) In vitro deneddylation assay. CSN deneddylation activity in the presence of 500 nM HSC70 with or without 5 µM NR peptide. The bottom graphs show the mean ± s.e.m. ** P < 0.01 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.005) and 40 min ( P = 0.0023). ( C ) In vitro pulldown assay. A mixture containing Strep-tagged CSN and GST-tagged HSC70 WT or E175S mutant was subjected to immunoprecipitation with Streptactin Sepharose. ( D ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70 E175S. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 40 min ( P = 0.036). ( E ) Immunoblotting analysis of the established HSC70 knockdown (shHSC70) cell line. GAPDH protein was used as an internal control, and bar graphs show the relative expression level of HSC70 in shHSC70 cells to those in shCtrl cells ( n = 6 independent expermeriments), and the ratio of neddylated CUL1 to total CUL1 in shCtrl and shHSC70 cells ( n = 9 independent experiments). The box represents the interquartile range (IQR), with the bottom and top edges indicating the 25th and 75th percentiles, respectively. The horizontal line within the box denotes the median (50th percentile). The whiskers extend to the minimum and maximum values from the box. Data points are shown individually. ( F ) Immunoblotting analysis of shCtrl and shHSC70 cells with or without transient FLAG-HSC70 expression. .

    Journal: EMBO Reports

    Article Title: HSC70 coordinates COP9 signalosome and SCF ubiquitin ligase activity to enable a prompt stress response

    doi: 10.1038/s44319-025-00376-x

    Figure Lengend Snippet: ( A ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70. Neddylated or non-neddylated CUL1 were detected by immunoblotting with anti-CUL1 antibody. The differences in the deneddylation activity of CSN were illustrated by estimating the percentage of non-neddylated CUL1 to total CUL1 at each time point based on protein band intensities. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.014) and 40 min ( P = 0.044). ( B ) In vitro deneddylation assay. CSN deneddylation activity in the presence of 500 nM HSC70 with or without 5 µM NR peptide. The bottom graphs show the mean ± s.e.m. ** P < 0.01 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 20 min ( P = 0.005) and 40 min ( P = 0.0023). ( C ) In vitro pulldown assay. A mixture containing Strep-tagged CSN and GST-tagged HSC70 WT or E175S mutant was subjected to immunoprecipitation with Streptactin Sepharose. ( D ) In vitro deneddylation assay. CSN deneddylation activity in the presence or absence of 500 nM HSC70 E175S. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 40 min ( P = 0.036). ( E ) Immunoblotting analysis of the established HSC70 knockdown (shHSC70) cell line. GAPDH protein was used as an internal control, and bar graphs show the relative expression level of HSC70 in shHSC70 cells to those in shCtrl cells ( n = 6 independent expermeriments), and the ratio of neddylated CUL1 to total CUL1 in shCtrl and shHSC70 cells ( n = 9 independent experiments). The box represents the interquartile range (IQR), with the bottom and top edges indicating the 25th and 75th percentiles, respectively. The horizontal line within the box denotes the median (50th percentile). The whiskers extend to the minimum and maximum values from the box. Data points are shown individually. ( F ) Immunoblotting analysis of shCtrl and shHSC70 cells with or without transient FLAG-HSC70 expression. .

    Article Snippet: Lentiviral particle production involved transfecting plasmids encoding shCtrl or shHSC70 in the pLKO.1 puromycin resistant vector or pCDH-CMV-PA-HA-CSN3-EF1 purovector into HEK293T cells together with pRSV-Rev (Addgene no. 12253), pMD 2.G (Addgene no. 12259), and pMDL g/p RRE plasmids (Addgene no. 12251) using Lipofectamine 2000.

    Techniques: In Vitro, Activity Assay, Western Blot, Mutagenesis, Immunoprecipitation, Knockdown, Control, Expressing

    ( A ) CHX chase assay of endogenous MCL1 with pharmacological inhibition with YM-01 or VER155008. Each protein level was densitometrically quantified (normalized to 0 min) and shown in the graph below. The bottom graph shows the mean ± s.e.m. * P < 0.05, *** P < 0.001 ( n = 3 independent experiments, respectively; Tukey’s HSD test.). Compared with DMSO treatment, a significant difference was observed at 60 min ( P = 0.014), 120 min ( P = 0.0004), and 180 min ( P = 0.0002) in VER155008 treatment group, and was observed at 60 min ( P = 0.033), 120 min ( P < 0.000087), and 180 min ( P = 0.0001) in YM-01 treatment group. ( B ) CHX chase assays of endogenous MCL-1 with or without knockdown of HSC70. The bottom graph shows the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, shCtrl; n = 4 independent experiments, shHSC70; Welch’s t test). A significant difference was observed at 120 min ( P = 0.039) and 180 min ( P = 0.010). ( C ) CHX chase assays of endogenous MCL-1 in shHSC70 cells with or without transient FLAG-HSC70 expression. The CHX chase assay was started 48 h after transfection. The bottom graph shows the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 60 min ( P = 0.026) and 120 min ( P = 0.046). ( D ) and ( E ) In vivo ubiquitination of endogenous MCL-1 ( D ) and FLAG-MCL-1 ( E ). Unmodified and polyubiquitinated FLAG-MCL-1 or endogenous MCL-1 were detected by immunoblotting with FLAG or MCL-1 antibody (*non-specific band). .

    Journal: EMBO Reports

    Article Title: HSC70 coordinates COP9 signalosome and SCF ubiquitin ligase activity to enable a prompt stress response

    doi: 10.1038/s44319-025-00376-x

    Figure Lengend Snippet: ( A ) CHX chase assay of endogenous MCL1 with pharmacological inhibition with YM-01 or VER155008. Each protein level was densitometrically quantified (normalized to 0 min) and shown in the graph below. The bottom graph shows the mean ± s.e.m. * P < 0.05, *** P < 0.001 ( n = 3 independent experiments, respectively; Tukey’s HSD test.). Compared with DMSO treatment, a significant difference was observed at 60 min ( P = 0.014), 120 min ( P = 0.0004), and 180 min ( P = 0.0002) in VER155008 treatment group, and was observed at 60 min ( P = 0.033), 120 min ( P < 0.000087), and 180 min ( P = 0.0001) in YM-01 treatment group. ( B ) CHX chase assays of endogenous MCL-1 with or without knockdown of HSC70. The bottom graph shows the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, shCtrl; n = 4 independent experiments, shHSC70; Welch’s t test). A significant difference was observed at 120 min ( P = 0.039) and 180 min ( P = 0.010). ( C ) CHX chase assays of endogenous MCL-1 in shHSC70 cells with or without transient FLAG-HSC70 expression. The CHX chase assay was started 48 h after transfection. The bottom graph shows the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 60 min ( P = 0.026) and 120 min ( P = 0.046). ( D ) and ( E ) In vivo ubiquitination of endogenous MCL-1 ( D ) and FLAG-MCL-1 ( E ). Unmodified and polyubiquitinated FLAG-MCL-1 or endogenous MCL-1 were detected by immunoblotting with FLAG or MCL-1 antibody (*non-specific band). .

    Article Snippet: Lentiviral particle production involved transfecting plasmids encoding shCtrl or shHSC70 in the pLKO.1 puromycin resistant vector or pCDH-CMV-PA-HA-CSN3-EF1 purovector into HEK293T cells together with pRSV-Rev (Addgene no. 12253), pMD 2.G (Addgene no. 12259), and pMDL g/p RRE plasmids (Addgene no. 12251) using Lipofectamine 2000.

    Techniques: Inhibition, Knockdown, Expressing, Transfection, In Vivo, Ubiquitin Proteomics, Western Blot

    ( A ) CHX chase assay of endogenous CDC25A with or without HSC70 knockdown, or pharmacological inhibition with YM-01. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments; Welch’s t test). Compared with shCtrl cells or DMSO treatment, a significant difference was observed at 15 min ( P = 0.025) and 30 min ( P = 0.045) in shHSC70 cells and at 30 min ( P = 0.042) and 60 min ( P = 0.011) in YM-01 treated cells. ( B ) CHX chase assay of endogenous p27 or c-MYC with or without HSC70 knockdown. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). For p27 protein, a significant difference was observed at 120 min ( P = 0.032). For c-MYC protein, significant difference was observed at 60 min ( P = 0.033) and 180 min ( P = 0.045). ( A , B ) Each protein level was densitometrically quantified (normalized to 0 min) and shown in the graph below.

    Journal: EMBO Reports

    Article Title: HSC70 coordinates COP9 signalosome and SCF ubiquitin ligase activity to enable a prompt stress response

    doi: 10.1038/s44319-025-00376-x

    Figure Lengend Snippet: ( A ) CHX chase assay of endogenous CDC25A with or without HSC70 knockdown, or pharmacological inhibition with YM-01. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments; Welch’s t test). Compared with shCtrl cells or DMSO treatment, a significant difference was observed at 15 min ( P = 0.025) and 30 min ( P = 0.045) in shHSC70 cells and at 30 min ( P = 0.042) and 60 min ( P = 0.011) in YM-01 treated cells. ( B ) CHX chase assay of endogenous p27 or c-MYC with or without HSC70 knockdown. The bottom graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). For p27 protein, a significant difference was observed at 120 min ( P = 0.032). For c-MYC protein, significant difference was observed at 60 min ( P = 0.033) and 180 min ( P = 0.045). ( A , B ) Each protein level was densitometrically quantified (normalized to 0 min) and shown in the graph below.

    Article Snippet: Lentiviral particle production involved transfecting plasmids encoding shCtrl or shHSC70 in the pLKO.1 puromycin resistant vector or pCDH-CMV-PA-HA-CSN3-EF1 purovector into HEK293T cells together with pRSV-Rev (Addgene no. 12253), pMD 2.G (Addgene no. 12259), and pMDL g/p RRE plasmids (Addgene no. 12251) using Lipofectamine 2000.

    Techniques: Knockdown, Inhibition

    ( A ) Co-IP in HEK293T cells with or without UV irradiation (800 J/m 2 ) using HSC70 antibody, with IgG serving as a negative control. HEK293T cells were treated with 1 µM MLN4924 for 30 min immediately after UV irradiation where indicated. ( B ) Ultraviolet induced degradation of endogenous CDC25A in shCtrl and shHSC70 cells. Each protein level was densitometrically quantified (normalized to 0 min) and shown in the graph. The graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 15 min ( P = 0.031) and 60 min ( P = 0.041). ( C ) Flow cytometry assessment of the cell cycle. shCtrl or shHSC70 cells were synchronized by double thymidine block and were irradiated with low dose UV irradiation (20 J/m 2 ) immediately after release. Cells were harvested and analyzed by fluorescence-assisted cell sorting (FACS) at the indicated time points after UV irradiation. ( D ) Relative proliferation rate of control or HSC70 knockdown HEK293T cells with or without UV irradiation. Relative cell counts were compared to day 0 in all graphs. The graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 3 days ( P = 0.017) after UV irradiation. ( E ) Protein expression level of endogenous cleaved-PARP after UV irradiation. shCtrl or shHSC70 cells were harvested for western blotting at the indicated time point after UV irradiation. The graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 6 h ( P = 0.027) and 8 h ( P = 0.048) after UV irradiation. ( F ) Caspase3/7 assay. Relative caspase 3/7 activity to those at 0 h were shown in the graph. The graphs show the mean ± s.e.m. *** P < 0.001 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 6 h ( P = 0.0005) after UV irradiation. ( G ) Proposed interplay among HSC70, CSN, and NEDD8-SCF. Under basal conditions, HSC70 mainly interacts with CSN and enhances its deneddylation activity. Under SCF-activated conditions, HSC70 alternatively interacts with substrate-bound NEDD8-SCF, thereby promoting SCF ubiquitination activity. .

    Journal: EMBO Reports

    Article Title: HSC70 coordinates COP9 signalosome and SCF ubiquitin ligase activity to enable a prompt stress response

    doi: 10.1038/s44319-025-00376-x

    Figure Lengend Snippet: ( A ) Co-IP in HEK293T cells with or without UV irradiation (800 J/m 2 ) using HSC70 antibody, with IgG serving as a negative control. HEK293T cells were treated with 1 µM MLN4924 for 30 min immediately after UV irradiation where indicated. ( B ) Ultraviolet induced degradation of endogenous CDC25A in shCtrl and shHSC70 cells. Each protein level was densitometrically quantified (normalized to 0 min) and shown in the graph. The graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 15 min ( P = 0.031) and 60 min ( P = 0.041). ( C ) Flow cytometry assessment of the cell cycle. shCtrl or shHSC70 cells were synchronized by double thymidine block and were irradiated with low dose UV irradiation (20 J/m 2 ) immediately after release. Cells were harvested and analyzed by fluorescence-assisted cell sorting (FACS) at the indicated time points after UV irradiation. ( D ) Relative proliferation rate of control or HSC70 knockdown HEK293T cells with or without UV irradiation. Relative cell counts were compared to day 0 in all graphs. The graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 3 days ( P = 0.017) after UV irradiation. ( E ) Protein expression level of endogenous cleaved-PARP after UV irradiation. shCtrl or shHSC70 cells were harvested for western blotting at the indicated time point after UV irradiation. The graphs show the mean ± s.e.m. * P < 0.05 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 6 h ( P = 0.027) and 8 h ( P = 0.048) after UV irradiation. ( F ) Caspase3/7 assay. Relative caspase 3/7 activity to those at 0 h were shown in the graph. The graphs show the mean ± s.e.m. *** P < 0.001 ( n = 3 independent experiments, respectively; Welch’s t test). A significant difference was observed at 6 h ( P = 0.0005) after UV irradiation. ( G ) Proposed interplay among HSC70, CSN, and NEDD8-SCF. Under basal conditions, HSC70 mainly interacts with CSN and enhances its deneddylation activity. Under SCF-activated conditions, HSC70 alternatively interacts with substrate-bound NEDD8-SCF, thereby promoting SCF ubiquitination activity. .

    Article Snippet: Lentiviral particle production involved transfecting plasmids encoding shCtrl or shHSC70 in the pLKO.1 puromycin resistant vector or pCDH-CMV-PA-HA-CSN3-EF1 purovector into HEK293T cells together with pRSV-Rev (Addgene no. 12253), pMD 2.G (Addgene no. 12259), and pMDL g/p RRE plasmids (Addgene no. 12251) using Lipofectamine 2000.

    Techniques: Co-Immunoprecipitation Assay, Irradiation, Negative Control, Flow Cytometry, Blocking Assay, Fluorescence, FACS, Control, Knockdown, Expressing, Western Blot, Activity Assay, Ubiquitin Proteomics

    ( A ) Immunostaining of control or HSC70 knockdown HEK293T cells with or without low-dose UV irradiation (20 J/m 2 ) using γH2AX antibody and Hoechst 33342. Scale bars, 10 µm. ( B ) Quantification of cells with γH2AX positive foci with or without UV irradiation ( n = 6 independent experiments for shCtrl cells with or without UV, respectively; n = 7 or 5 independent experiments for shHSC70 cells with or without UV, respectively; Welch’s t test). The graphs show the mean ± s.e.m. NS not significant.

    Journal: EMBO Reports

    Article Title: HSC70 coordinates COP9 signalosome and SCF ubiquitin ligase activity to enable a prompt stress response

    doi: 10.1038/s44319-025-00376-x

    Figure Lengend Snippet: ( A ) Immunostaining of control or HSC70 knockdown HEK293T cells with or without low-dose UV irradiation (20 J/m 2 ) using γH2AX antibody and Hoechst 33342. Scale bars, 10 µm. ( B ) Quantification of cells with γH2AX positive foci with or without UV irradiation ( n = 6 independent experiments for shCtrl cells with or without UV, respectively; n = 7 or 5 independent experiments for shHSC70 cells with or without UV, respectively; Welch’s t test). The graphs show the mean ± s.e.m. NS not significant.

    Article Snippet: Lentiviral particle production involved transfecting plasmids encoding shCtrl or shHSC70 in the pLKO.1 puromycin resistant vector or pCDH-CMV-PA-HA-CSN3-EF1 purovector into HEK293T cells together with pRSV-Rev (Addgene no. 12253), pMD 2.G (Addgene no. 12259), and pMDL g/p RRE plasmids (Addgene no. 12251) using Lipofectamine 2000.

    Techniques: Immunostaining, Control, Knockdown, Irradiation