1.Effects of blocking apoptosis and lactic acid metabolism pathways on robustness and foreign protein expression of CHO cells.
Hong LU ; Tongyang ZHANG ; Ruofei LYU ; Bolin HOU ; Tingwen FAN ; Huaiyi YANG ; Jie NA
Chinese Journal of Biotechnology 2025;41(8):3098-3109
The Chinese hamster ovary (CHO) cell is the most representative mammalian cell protein expression system, and it is widely used in recombinant protein, vaccine and other biopharmaceutical fields. However, due to its vulnerability to environmental factors, apoptosis, and metabolic inhibitors, CHO cells demonstrate poor robustness, and thus the integrated viable cell density and unit cell productivity are largely limited. To improve the robustness and foreign protein expression efficiency of CHO cells, we employed CRISPR/Cas9 to knock out the apoptosis genes Bax and Bak and the lactate dehydrogenase gene LDHa, thereby blocking apoptosis and lactic acid metabolism pathways. The results of apoptosis and single cell viability detection showed that the number of apoptotic cells in the knockout cell lines Bax-/-, Bax-bak-/-, and LDHa-Bax-bak-/- was reduced by 22.51%, 37.73%, and 64.12%, respectively, compared with the wild-type cell line CHO-K1, which indicated that the anti-apoptotic ability was significantly improved. After staurosporine treatment, the single cell viability of Bax-/-, Bax-bak-/-, and LDHa-Bax-bak-/- cells was increased by 30.8%, 22%, and 41.1%, respectively. After treatment with puromycin, the single cell viability of Bax-/-, Bax-bak-/-, and LDHa-Bax-bak-/- cells was increased by 26.7%, 30.7%, and 38.8%, respectively. To further investigate the production performance of cells obtained after blocking apoptosis and lactic acid metabolism pathways, we induced transient expression of human tissue plasminogen activator (tPA) in these cells. The results showed that the secretion of tPA in Bax-/-, Bax-Bak-/-, and LDHa-Bax-Bak-/- cells was 11.12%, 46.18%, and 63.13%, respectively, higher than that in wild-type CHO-K1 cells. The expression of intracellular tPA was increased by 35.65%, 130%, and 192.15%. In conclusion, blocking apoptosis and lactic acid metabolism pathways simultaneously can improve cell robustness and productivity, with the performance better than blocking the apoptosis pathway alone. The above results indicated that the constructed cell lines were expected to be the delivery carriers of protein drugs such as medicinal peptides, and better used for the treatment of diseases.
CHO Cells
;
Cricetulus
;
Animals
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Apoptosis/genetics*
;
Lactic Acid/metabolism*
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Recombinant Proteins/biosynthesis*
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L-Lactate Dehydrogenase/genetics*
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bcl-2-Associated X Protein/genetics*
;
bcl-2 Homologous Antagonist-Killer Protein/genetics*
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Cricetinae
;
CRISPR-Cas Systems
;
Staurosporine/pharmacology*
2.11'-Deoxyverticillin A induces caspase-dependent cell apoptosis in PC3M cells.
Yingdi SHI ; Yingqiu ZHANG ; Yangxiao NI ; Guoli SHI ; Huaiyi YANG
Chinese Journal of Biotechnology 2012;28(1):96-103
Recent years, the incidence and mortality of prostate cancer have increased dramatically in China. At earlier stages, most diagnosed prostate cancers are responsive to androgen depletion treatment, yet, nearly all patients will eventually progress to metastatic androgen-independent prostate cancer (AIPC), which still has no effective therapeutic method or drug to deal with. 11'-Deoxyverticillin A (C42) belongs to the family of epipolythiodioxopiperazines (ETPs), an interesting class of fungal toxins that inhibit farnesyl transferase. Compounds holding such a property have been explored as putative anticancer agents. In this study, using PC3M cells, an AIPC cell line, we investigated the effect of the compound on apoptosis and explored the underlying mechanism. It revealed that C42 markedly enhanced the activity of caspase-3/7 and increased the accumulation of the cleaved PARP, all of which are the markers of apoptosis. It also revealed that C42 either decreased cell viability or inhibited the growth of PC3M cells. Moreover, we observed that the loss of cell viability and cell growth inhibition induced by C42 were both time- and dosage dependent. Taken together, we indicated that C42 can induce caspase-dependent apoptosis in AIPC cells, and the results presented here will broaden our knowledge about the molecular mechanisms by which C42 exerts its anticancer activity, and future work in this direction may provide valuable information in the development of these compounds into effective cancer therapeutic strategies against androgen-independent prostate cancer.
Apoptosis
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drug effects
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Caspase 3
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metabolism
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Caspase 7
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metabolism
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Cell Line, Tumor
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Disulfides
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pharmacology
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Farnesyltranstransferase
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antagonists & inhibitors
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Humans
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Male
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Mycotoxins
;
pharmacology
;
Piperazines
;
pharmacology
;
Prostatic Neoplasms
;
pathology
3.Protective effects of Glutamine on intestinal mucosa barrier dysfunction following traumatic brain injury in rats
Ming LI ; Chuahua HANG ; Jixing SHI ; Huaiyi ZHANG ; Jianping YE
Chinese Journal of Trauma 2008;24(8):624-627
Objective To observe the effect of Glutsmine on intestinal barrier function after traumatic brain injury in rats. Methods A total of 54 adult male Wistar rats were divided randomly into 3 groups, ie, normal group (Group N, 6 rats), TBI group (Group T, 24 rats) and Giutamine intervention group (Group G, 24 rats). Group T and Group G were subdivided into 4 groups according to detection time at days 1,3, 5 and 7 respectively. Meanwhile, 6 rats were enlisted in each group. The intestinal mucosa structure was detected by histopathological examination and electron microscopy. Apoptosis was detected by in situ immunohistochemical staining (TUNEL). Results Glutamine could relieve the pathological lesion of gut mucosa and decrease intestinal mucosa cell apoptosis after traumatic brain injury. Conclusion Glutamine can protect intestinal mucosa barrier function following traumatic brain injury.

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