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Preparation and application of polyclonal antibodies against endoplasmic reticulum stress-related proteins TgBip and TgeIF2α of Toxoplasma gondii
Received date: 2025-10-27
Revised date: 2026-02-18
Online published: 2026-04-24
Supported by
National Natural Science Foundation of China(82372282);National Natural Science Foundation of China(82402659);Natural Science Foundation of Zhejiang Province(LZ26H190002);Natural Science Foundation of Zhejiang Province(LQN25H190007)
Objective To prepare polyclonal antibodies against Toxoplasma gondii immunoglobulin heavy chain-binding protein (TgBip) and eukaryotic translation initiation factor 2α (TgeIF2α), and to evaluate their specificity. Methods Specific primers for amplification of TgBip and TgeIF2α were designed using bioinformatics methods. Target genes were amplified using PCR assay with cDNA from tachyzoites of T. gondii RH strain as a template. The recombinant plasmids pColdⅢ-His-TgBip and pColdⅢ-His-TgeIF2α were constructed using in-fusion cloning, transformed into Escherichia coli BL21 competent cells. Following induction of protein expression with isopropyl-β-D-thiogalactoside (IPTG), the expression of recombinant proteins was analyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) and Western blotting assay, and proteins were purified using Ni-NTA affinity chromatography. New Zealand white rabbits were immunized with purified TgBip and TgeIF2α proteins as antigens to prepare specific anti-TgBip and anti-TgeIF2α polyclonal antibodies. The recognition of endogenous TgBip and TgeIF2α proteins by polyclonal antibodies was analyzed using enhanced chemiluminescence assay. Changes in TgBip protein expression were examined using indirect immunofluorescence assay (IFA) during the process of endoplasmic reticulum stress, and changes in TgeIF2α phosphorylation levels were detected using Western blotting assay during the process of endoplasmic reticulum stress. Results PCR assay showed that the specific amplification fragments of TgBip and TgeIF2α were 1 920 and 1 044 bp in size, respectively, which were consistent with expected fragment sizes. The recombinant plasmids pColdⅢ-His-TgBip and pColdⅢ-His-TgeIF2α were successfully constructed. SDS-PAGE and Western blotting assay showed high expression of TgBip and TgeIF2α proteins in BL21 competent cells, with relative molecular masses (Mr) of approximately 71 000 and 40 000, which approached to the theoretical values. Western blotting assay showed that the prepared antibodies would specifically recognize endogenous T. gondii TgBip and TgeIF2α proteins, with no cross-reactions to host cells. IFA showed that TgBip was distributed in T. gondii endoplasmic reticulum, and TgBip was distributed around the cell nucleus prior to induction of endoplasmic reticulum stress and dispersed following induction of endoplasmic reticulum stress. Western blotting assay determined higher relative expression of phosphorylated TgeIF2α following induction of endoplasmic reticulum stress than prior to induction of endoplasmic reticulum stress [(2.199 ± 0.376) vs. (1.217 ± 0.099); t = 4.379, P < 0.05]. Conclusion The prepared specific polyclonal antibodies against TgBip and TgeIF2α may be used to detect the endoplasmic reticulum structure and stress level of T. gondii.
TIAN Siyu , MOU Yani , TAN Feng . Preparation and application of polyclonal antibodies against endoplasmic reticulum stress-related proteins TgBip and TgeIF2α of Toxoplasma gondii[J]. CHINESE JOURNAL OF PARASITOLOGY AND PARASITIC DISEASES, 2026 , 44(2) : 203 -208 . DOI: 10.12140/j.issn.1000-7423.2026.02.008
| [1] | Matta SK, Rinkenberger N, Dunay IR, et al. Toxoplasma gondii infection and its implications within the central nervous system[J]. Nat Rev Microbiol, 2021, 19(7): 467-480. |
| [2] | An R, Tang YW, Chen LJ, et al. Encephalitis is mediated by ROP18 of Toxoplasma gondii, a severe pathogen in AIDS patients[J]. Proc Natl Acad Sci USA, 2018, 115(23): E5344-E5352. |
| [3] | Gaji RY, Sharp AK, Brown AM. Protein kinases in Toxoplasma gondii[J]. Int J Parasitol, 2021, 51(6): 415-429. |
| [4] | 吴钦利, 倪泽, 丁豪杰, 等. 刚地弓形虫四抗原融合蛋白表达及免疫保护性研究[J]. 中国寄生虫学与寄生虫病杂志, 2025, 43(4): 555-561. |
| Wu QL, Ni Z, Ding HJ, et al. Expression and immunoprotective effect of a Toxoplasma gondii four-antigen fusion protein[J]. Chin J Parasitol Parasit Dis, 2025, 43(4): 555-561. (in Chinese) | |
| [5] | Besteiro S, Dubremetz JF, Lebrun M. The moving junction of api complexan parasites: a key structure for invasion[J]. Cell Microbiol, 2011, 13(6): 797-805. |
| [6] | Koshy AA, Dietrich HK, Christian DA, et al. Toxoplasma co-opts host cells it does not invade[J]. PLoS Pathog, 2012, 8(7): e1002825. |
| [7] | Ihara F, Nishikawa Y. Toxoplasma gondii manipulates host cell signaling pathways via its secreted effector molecules[J]. Parasitol Int, 2021, 83: 102368. |
| [8] | Coffey MJ, Jennison C, Tonkin CJ, et al. Role of the ER and Golgi in protein export by Api complexa[J]. Curr Opin Cell Biol, 2016, 41: 18-24. |
| [9] | Narasimhan J, Joyce BR, Naguleswaran A, et al. Translation regulation by eukaryotic initiation factor-2 kinases in the development of latent cysts in Toxoplasma gondii[J]. J Biol Chem, 2008, 283(24): 16591-16601. |
| [10] | Luk FC, Johnson TM, Beckers CJ. N-linked glycosylation of proteins in the protozoan parasite Toxoplasma gondii[J]. Mol Biochem Parasitol, 2008, 157(2): 169-178. |
| [11] | Black MW, Arrizabalaga G, Boothroyd JC. Ionophore-resistant mutants of Toxoplasma gondii reveal host cell permeabilization as an early event in egress[J]. Mol Cell Biol, 2000, 20(24): 9399-9408. |
| [12] | Harbut MB, Patel BA, Yeung BK, et al. Targeting the ERAD pathway via inhibition of signal peptide peptidase for antiparasitic therapeutic design[J]. Proc Natl Acad Sci USA, 2012, 109(52): 21486-21491. |
| [13] | Zhang KZ, Kaufman RJ. From endoplasmic-reticulum stress to the inflammatory response[J]. Nature, 2008, 454(7203): 455-462. |
| [14] | Ajoolabady A, Wang SY, Kroemer G, et al. ER stress in cardiometabolic diseases: from molecular mechanisms to therapeutics[J]. Endocr Rev, 2021, 42(6): 839-871. |
| [15] | Brocchieri L, Conway de Macario E, Macario AJ. hsp70 genes in the human genome: conservation and differentiation patterns predict a wide array of overlapping and specialized functions[J]. BMC Evol Biol, 2008, 8: 19. |
| [16] | Samanta S, Yang SH, Debnath B, et al. The hydroxyquinoline analogue YUM70 inhibits GRP78 to induce ER stress-mediated apoptosis in pancreatic cancer[J]. Cancer Res, 2021, 81(7): 1883-1895. |
| [17] | Xia SK, Duan WZ, Liu WW, et al. GRP78 in lung cancer[J]. J Transl Med, 2021, 19: 118. |
| [18] | Cao SS. Endoplasmic reticulum stress and unfolded protein response in inflammatory bowel disease[J]. Inflamm Bowel Dis, 2015, 21(3): 636-644. |
| [19] | Gonzalez-Gronow M, Gopal U, Austin RC, et al. Glucose-regulated protein (GRP78) is an important cell surface receptor for viral invasion, cancers, and neurological disorders[J]. IUBMB Life, 2021, 73(6): 843-854. |
| [20] | Bravo R, Parra V, Gatica D, et al. Endoplasmic reticulum and the unfolded protein response: dynamics and metabolic integration[J]. Int Rev Cell Mol Biol, 2013, 301: 215-290. |
| [21] | Lee K, Neigeborn L, Kaufman RJ. The unfolded protein response is required for haploid tolerance in yeast[J]. J Biol Chem, 2003, 278(14): 11818-11827. |
| [22] | Ji FB, Zhang JJ, Mao LP, et al. Liver-specific gene PGRMC1 blocks c-Myc-induced hepatocarcinogenesis through ER stress-independent PERK activation[J]. Nat Commun, 2025, 16(1): 50. |
| [23] | Asano K. Origin of translational control by eIF2α phosphorylation: insights from genome-wide translational profiling studies in fission yeast[J]. Curr Genet, 2021, 67(3): 359-368. |
| [24] | Harding HP, Zhang Y, Ron D. Protein translation and folding are coupled by an endoplasmic-reticulum-resident kinase[J]. Nature, 1999, 397(6716): 271-274. |
| [25] | Dang TT, Kim MJ, Lee YY, et al. Phosphorylation of EIF2S1 (eukaryotic translation initiation factor 2 subunit alpha) is indispensable for nuclear translocation of TFEB and TFE3 during ER stress[J]. Autophagy, 2023, 19(7): 2111-2142. |
| [26] | Zielke S, Kardo S, Zein L, et al. ATF4 links ER stress with reticulophagy in glioblastoma cells[J]. Autophagy, 2021, 17(9): 2432-2448. |
| [27] | Sarabhai T, Kahl S, Gancheva S, et al. Loss of mitochondrial adaptation associates with deterioration of mitochondrial turnover and structure in metabolic dysfunction-associated steatotic liver disease[J]. Metabolism, 2024, 151: 155762. |
| [28] | Li J, Ni M, Lee B, et al. The unfolded protein response regulator GRP78/BiP is required for endoplasmic reticulum integrity and stress-induced autophagy in mammalian cells[J]. Cell Death Differ, 2008, 15(9): 1460-1471. |
| [29] | Pfaffenbach KT, Lee AS. The critical role of GRP78 in physiologic and pathologic stress[J]. Curr Opin Cell Biol, 2011, 23(2): 150-156. |
| [30] | Lee AS. The ER chaperone and signaling regulator GRP78/BiP as a monitor of endoplasmic reticulum stress[J]. Methods, 2005, 35(4): 373-381. |
| [31] | Li JZ, Lee A. Stress induction of GRP78/BiP and its role in cancer[J]. Curr Mol Med, 2006, 6(1): 45-54. |
| [32] | 魏绮珮, 齐永芬, 鱼艳荣. 内质网应激在寄生虫感染中的作用[J]. 中国寄生虫学与寄生虫病杂志, 2017, 35(6): 617-622. |
| Wei QP, Qi YF, Yu YR. Effects of endoplasmic reticulum stress in parasite infection[J]. Chin J Parasitol Parasit Dis, 2017, 35(6): 617-622. (in Chinese) | |
| [33] | Joyce BR, Queener SF, Wek RC, et al. Phosphorylation of eukaryotic initiation factor-2 {alpha} promotes the extracellular survival of obligate intracellular parasite Toxoplasma gondii[J]. Proc Natl Acad Sci USA, 2010, 107(40): 17200-17205. |
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