| Literature DB >> 35410218 |
Bin Zhou1,2,3, Youwei Lu4, Zhiming Zhao4, Tongguo Shi1,2,3, Hongya Wu1,2,3, Weichang Chen1,2,3, Liang Zhang5,6,7, Xueguang Zhang8,9,10.
Abstract
INTRODUCTION: B7-H4 is overexpressed in colorectal cancer (CRC) and plays an important role in tumor growth and immunosuppression. However, the exact mechanism that regulates B7-H4 expression remains largely unknown. Here, we investigated whether protein kinase C δ (PKCδ) regulates the expression of B7-H4 in CRC.Entities:
Keywords: B7-H4; Colorectal cancer; Metastasis; PKCδ; Regulation
Year: 2022 PMID: 35410218 PMCID: PMC8996430 DOI: 10.1186/s12935-022-02567-1
Source DB: PubMed Journal: Cancer Cell Int ISSN: 1475-2867 Impact factor: 5.722
Fig. 1B7-H4 and p-PKCδ levels were increased in clinical CRC tissue specimens. A Representative images of negative (400 ×), weak (400 ×), intermediate (400 ×), and strong (400 ×) staining for B7-H4 and p-PKCδ. B B7-H4 and p-PKCδ levels were significantly increased in CRC. The levels of B7-H4 and p-PKCδ in CRC tissue samples were compared with those in adjacent normal tissue samples. Statistical analysis was conducted with an unpaired t test (P < 0.001). C Quantitative PCR analysis showed that the levels of both B7-H4 and PKCδ were significantly increased in tumor tissue samples compared with adjacent normal colon tissue samples
The expression of B7-H4 and p-PKCδ in clinical CRC tissues
| p-PKCδ expression | B7-H4 expression (%) | ||
|---|---|---|---|
| Negative(n = 93) | Positive(n = 132) | ||
| Negative (n = 86) | 55 (64.0) | 31 (36.0) | 0.000b |
| Positive (n = 139) | 38 (27.3) | 101 (72.7) | |
aP value is obtained by Pearson chi-square, Asymp. Sig., two tailed
bP < 0.05 was designated as significance
Fig. 2Correlation between B7-H4 and p-PKCδ levels. A TCGA dataset analysis was performed on the GEPIA website (http://gepia.cancer-pku.cn/). This analysis showed that PRKCD (PKCδ) mRNA expression was positively correlated with VTCN1 (encoding B7-H4) mRNA expression. B The protein levels of B7-H4 and p-PKCδ in the NCM460, SW480, HCT116, SW620 and RKO cell lines were determined by Western blot analysis. The data are expressed as the mean ± SD values; n = 3. C Serial p-PKCδ+ tumor sections were examined for B7-H4 expression, and positive staining (400 ×) of B7-H4 and p-PKCδ in CRC samples is shown. Double IF staining of CRC samples was performed. CRC tissue samples were stained for p-PKCδ (green, 200 ×) and B7-H4 (red, 200 ×). B7-H4+/p- PKCδ+ cells were identified in CRC tissue specimens (dark yellow; original magnification). D TCGA COAD dataset analysis was performed on the XENA website. This analysis showed that the B7-H4 mRNA level was positively correlated with lymph node metastasis
The association of B7-H4 and p-PKCδ with clinical parameters
| Variables | B7-H4 (%) | p-PKCδ (%) | p-PKCδ+B7-H4+ (%) | ||||||
|---|---|---|---|---|---|---|---|---|---|
| Positive (n = 132) | Negative (n = 93) | Positive (n = 139) | Negative (n = 86) | Positive (n = 101) | Others (n = 124) | ||||
| Gender | |||||||||
| Male (n = 122) | 72 (59.0%) | 50 (41.0%) | 0.908 | 78 (63.9%) | 44 (36.1%) | 0.469 | 53 (43.4%) | 69 (56.6%) | 0.635 |
| Female (n = 103) | 60 (58.3%) | 43 (41.7%) | 61 (59.2%) | 42 (40.8%) | 48 (46.6%) | 55 (53.4%) | |||
| Histology | |||||||||
| Well (n = 36) | 13 (36.1%) | 23 (63.9%) | 0.003b | 22 (61.1%) | 14 (38.9%) | 0.928 | 10 (27.8%) | 26 (72.2%) | 0.024b |
| Moderate/poor (n = 189) | 119 (63.0%) | 70 (37.0%) | 117 (61.9%) | 72 (38.1%) | 91 (48.1%) | 98 (51.9%) | |||
| Depth of tumor | |||||||||
| T1 + T2 (n = 51) | 26 (51%) | 25 (49%) | 0.205 | 31 (52.6%) | 20 (47.4%) | 0.868 | 19 (15.8%) | 32 (84.2%) | 0.213 |
| T3 + T4 (n = 174) | 106 (60.9%) | 68 (39.1%) | 108 (69.1%) | 66 (30.9%) | 82 (47.1%) | 92 (52.9%) | |||
| Lymph node metastasis | |||||||||
| Negative (n = 136) | 69 (50.7%) | 67 (49.3%) | 0.003b | 79 (58.1%) | 57 (41.9%) | 0.159 | 49 (36.0%) | 87 (64.0%) | 0.001b |
| Positive (n = 89) | 63 (70.8%) | 26 (29.2%) | 60 (67.4%) | 29 (32.6%) | 52 (58.4%) | 37 (41.6%) | |||
| Dukes’ stage | |||||||||
| A + B (n = 122) | 63 (51.6%) | 59 (48.4%) | 0.020b | 68 (55.7%) | 54 (44.3%) | 0.042b | 43 (35.2%) | 79 (64.8%) | 0.002b |
| C + D (n = 103) | 69 (67.0%) | 34 (33.0%) | 71 (68.9%) | 32 (31.1%) | 58 (56.3%) | 45 (43.7%) | |||
aP value is obtained by Pearson chi-square, Asymp. Sig., two tailed
bP < 0.05 was designated as significance
Fig. 3PKCδ mediates B7-H4 upregulation in CRC cell lines. HCT116 and SW620 cells were treated with various concentrations of TPA (A) or rottlerin (C) for 20 h. B B7-H4 and nuclei in HCT116 cells were stained with a PE-conjugated anti-B7-H4 antibody and DAPI, respectively. D Flow cytometric analysis was used to detect changes in B7-H4 expression in TPA- or rottlerin-treated HCT116 and SW620 cells. CRC cells were treated with TPA or rottlerin for 24 h, and intracellular B7-H4 expression was examined by flow cytometry. E The HCT116 and SW620 cell lines were treated with 1 μM rottlerin and 100 nM TPA for 24 h, and B7-H4 levels were determined by Western blotting. A representative Western blot image is shown in the left panel. Statistical analysis of B7-H4 expression (mean ± SD) from three separate experiments is shown in the right panel. *P < 0.05, **P < 0.01 and ***P < 0.001
Fig. 4PKCδ knockdown inhibited the expression of B7-H4 in CRC cell lines. HCT116 and SW620 cells were treated with a PKCδ-specific siRNA for 45 h. B7-H4 and PKCδ levels were determined by quantitative RT–PCR (A) and Western blotting (B). HCT116 and SW620 cells were treated with a PKCδ-specific siRNA for 24 h and were then incubated with TPA (100 nM) for 20 h (C). The cells were harvested to generate whole-cell lysates for detection of the indicated proteins by Western blot analysis. A representative Western blot and B7-H4 expression data (mean ± SD) from three separate experiments are shown. *P < 0.05, **P < 0.01 and ***P < 0.001
Fig. 5PKCδ inhibited B7-H4 expression via STAT3 in CRC cell lines. Treatment with a PKCδ-specific siRNA reduced the expression of both B7-H4 and STAT3 in HCT116 and SW620 cells (A). HCT116 and SW620 cells were treated with various concentrations of the STAT3 inhibitor cryptotanshinone (B) for 24 h. The cells were harvested to generate whole-cell lysates for detection of the indicated proteins by Western blot analysis. A representative Western blot and B7-H4 expression data (mean ± SD) from three separate experiments are shown. *P < 0.05, **P < 0.01 and ***P < 0.001
Fig. 6The PKCδ/B7-H4 axis promoted the migration of HCT116 cells. HCT116 cells were treated with a PKCδ-specific siRNA and/or a B7-H4-specific siRNA for 45 h, and B7-H4 protein levels were then determined by Western blot analysis (A). A Transwell assay was performed to examine the constitutive invasion of B7-H4 siRNA/HCT116, PKCδ siRNA/HCT116, PKCδ siRNA + B7-H4 siRNA/HCT116 and con siRNA/HCT116 cells (B). The invasion of B7-H4 siRNA/HCT116 cells was evaluated after the cells were treated with 100 nM TPA for 24 h (C). A wound healing assay was performed to evaluate the effects of PKCδ and B7-H4 on cell migration (D). Experiments were performed in triplicate. *P < 0.05, **P < 0.01 and ***P < 0.001
Fig. 7A Representative images of lung metastatic nodules developed in mice 54 days after injection of HCT116 cells. The isolated lungs were processed as described in the Materials and Methods section. Scale bar, 5 mm. B, C Representative images of lung metastatic nodules and H&E staining. The red arrowheads indicate metastatic nodules established in the lungs. H&E staining was performed to evaluate lung micrometastases in a pair of mice referred to in A. D Immunohistochemical analysis of p-PKCδ and B7-H4 in the two groups. The data are presented as the mean ± SD values (n = 5 animals/group). *P < 0.05; **P < 0.01