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PML/RARa 白血病诱导的小鼠模型用于免疫治疗评估

英文原题:PML/RARa leukemia induced murine model for immunotherapy evaluation.

查看英文原题

PML/RARa leukemia induced murine model for immunotherapy evaluation.

PubMed 2023/08/19(内容时间) Transpl Immunol Q3 · IF 1.6(JCR 2025)

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中文摘要

尽管白血病小鼠模型是新药治疗研究的宝贵工具,但大多数此类模型由免疫缺陷小鼠组成,无法表现出免疫反应。为了获得合适的白血病模型,我们在具有免疫能力的BALB/c小鼠中建立了基于移植的急性早幼粒细胞白血病模型(PML/RARa),从而使研究白血病中药物诱导的细胞免疫反应成为可能。移植后15天,通过白细胞增多(76.27 ± 21.8 vs. 3.40 ± 1.06;P < 0.0001)、贫血(7.46 ± 1.86 vs. 15.10 ± 0.96;P < 0.0001)和血小板减少(131.85 ± 39.32 vs. 839.50 ± 171.20;P < 0.0001),以及小鼠外周血中原始细胞的存在(约50%原始细胞;P < 0.0001),证实了PML/RARa白血病的发展。这些发现通过分类计数、流式细胞术和体内成像得到证实,表明PML/RARa小鼠骨髓(15.75 ± 3.30 vs 6.69 ± 0.55;P < 0.001)、外周血(7.88 ± 2.67 vs 1.22 ± 0.89;P < 0.001)和脾脏(35.21 ± 4.12 vs 1.35 ± 0.86;P < 0.0001)中未成熟细胞数量增加,以及骨髓(41.23 ± 4.80 vs 5.73 ± 1.50;P < 0.0001)、外周血(46.08 ± 7.52 vs 1.10 ± 0.59;P < 0.0001)和脾脏(35.31 ± 8.26 vs 2.49 ± 0.29;P < 0.0001)中早幼粒细胞增加。

与未移植小鼠的基础条件相比,PML/RARa小鼠表现出T淋巴细胞频率:CD4辅助性 = 外周血中14.85 ± 2.91 vs 20.77 ± 2.9(P < 0.05);脾脏中12.75 ± 1.33 vs 45.90 ± 2.02(P < 0.0001);CD8细胞毒性 = 外周血中11.27 ± 3.44 vs 11.05 ± 1.22(P > 0.05);脾脏中10.48 ± 1.16 vs 30.02 ± 1.80(P < 0.0001);自然杀伤(NK)细胞 = 外周血中3.68 ± 1.35 vs 6.84 ± 0.52(P < 0.B 细胞在外周血中为 2.50 ± 0.60 vs 15.20 ± 5.34(P < 0.001);在脾脏中为 17.77 ± 4.39 vs 46.90 ± 5.92(P < 0.0001);中性粒细胞 = 5.97% ± 1.88 vs 31.57 ± 9.14(P < 0.0001);单核细胞 = 6.45 ± 2.97 vs 15.85 ± 2.57(P < 0.001),在外周血中被选为经典型(3.33 ± 3.40 vs 57.80 ± 16.51,P < 0.0001)、中间型(57.42 ± 10.61 vs 21.75 ± 5.90,P < 0.0001)和非经典型单核细胞(37.51 ± 10.85 vs 18.08 ± 7.13,P < 0.05);并且在骨髓中表现为经典激活型(M1)(3.70 ± 0.94 vs 1.88 ± 0.39,P < 0.05),在脾脏中为 15.19 ± 3.32 vs 9.47 ± 1.61,P < 0.05),此外,在骨髓(23.06 ± 5.25 vs 1.76 ± 0.74,P < 0.0001)和脾脏(46.51 ± 11.18 vs 30.58 ± 2.64,P < 0.05)区室中还存在替代激活型(M2)巨噬细胞。

全反式维甲酸(ATRA)治疗 PML/RARa 小鼠可减少骨髓中的原始细胞(未成熟细胞)(8.62 ± 1.81 vs 15.76 ± 1.25;P < 0.05)和脾脏中的原始细胞(8.75 ± 1.31 vs 35.21 ± 1.55;P < 0.0001),而外周血中无变化(10.13 ± 3.33 vs 7.88 ± 1.01;P > 0.05),并减少骨髓中的早幼粒细胞(19.79 ± 4.84 vs 41.23 ± 1.81;P < 0.05)、外周血中的早幼粒细胞(31.65 ± 3.92 vs 46.09 ± 2.84;P < 0.05)和脾脏中的早幼粒细胞(24.84 ± 2.03 vs 41.46 ± 2.39;P < 0.001),同时增加外周血中性粒细胞(35.48 ± 7.24 vs 7.83 ± 1.40;P < 0.05),这一点通过 PML/RARa 小鼠染色涂片中未成熟细胞减少和中性粒细胞增加得到证实,从而确认该模型可用于药物开发研究。

我们的结果表明,在 BALB/c 小鼠中有效诱导了 PML/RARa 白血病,从而为研究白血病中的细胞免疫反应提供了一种低价且可靠的工具。

展开英文摘要原文

Even though leukemia murine models are valuable tools for new drug therapy studies, most of these models consist of immunocompromised mice, which do not exhibit immune responses. In order to obtain an adequate leukemia model, we established an acute promyelocytic leukemia transplantation-based model (PML/RARa) in immunocompetent BALB/c mice, thus making it possible to study drug-induced cellular immune responses in leukemia.

The development of PML/RARa leukemia was confirmed by leukocytosis (76. 27 ± 21. 8 vs. 3. 40 ± 1. 06; P < 0. 0001), anemia (7. 46 ± 1. 86 vs. 15. 10 ± 0. 96; P < 0. 0001), and thrombocytopenia (131. 85 ± 39. 32 vs. 839. 50 ± 171. 20; P < 0. 0001), and the presence of blasts in the peripheral blood of mice (approximately 50% blasts; P < 0. 0001), 15 days after the transplants.

These findings were corroborated through differential counts, flow cytometry, and in vivo imaging, which indicated increased number of immature cells in the bone marrow (15. 75 ± 3. 30 vs 6. 69 ± 0. 55; P < 0. 001), peripheral blood (7. 88 ± 2. 67 vs 1. 22 ± 0. 89; P < 0. 001), and spleen (35. 21 ± 4. 12 vs 1. 35 ± 0. 86; P < 0. 0001), as well as promyelocytes in the bone marrow (41. 23 ± 4. 80 vs 5. 73 ± 1. 50; P < 0. 0001), peripheral blood (46. 08 ± 7. 52 vs 1. 10 ± 0. 59; P < 0. 0001) and spleen (35. 31 ± 8. 26 vs 2. 49 ± 0. 29; P < 0. 0001) of PML/RARa mice. Compared to basal conditions of untransplanted mice, the PML/RARa mice exhibited frequencies of T lymphocytes CD4 helper = 14. 85 ± 2. 91 vs 20. 77 ± 2. 9 in the peripheral blood (P < 0. 05); 12. 75 ± 1. 33 vs 45. 90 ± 2. 02 in the spleen (P < 0. 0001); CD8 cytotoxic = 11. 27 ± 3. 44 vs 11. 05 ± 1. 22 in the peripheral blood (P > 0. 05); 10. 48 ± 1. 16 vs 30. 02 ± 1. 80 in the spleen (P < 0. 0001); natural killer (NK) cells = 3. 68 ± 1. 35 vs 6. 84 ± 0. 52 in the peripheral blood (P < 0. 001); 4. 43 ± 0. 57 vs 6. 40 ± 1. 14 in the spleen (P < 0. 05); B cells 2. 50 ± 0. 60 vs 15. 20 ± 5. 34 in the peripheral blood (P < 0. 001); 17. 77 ± 4. 39 vs 46. 90 ± 5. 92 in the spleen (P < 0. 0001); neutrophils = 5. 97% ± 1. 88 vs 31. 57 ± 9. 14 (P < 0. 0001); and monocytes = 6. 45 ± 2. 97 vs 15. 85 ± 2. 57 (P < 0.

001), selected as classical (3. 33 ± 3. 40 vs 57. 80 ± 16. 51, P < 0. 0001), intermediate (57. 42 ± 10. 61 vs 21. 75 ± 5. 90, P < 0. 0001), and non-classical monocytes (37. 51 ± 10. 85 vs 18. 08 ± 7. 13, P < 0. 05) in the peripheral blood; and as classically activated (M1) within in the bone marrow (3. 70 ± 0. 94 vs 1. 88 ± 0. 39, P < 0. 05) and spleen 15. 19 ± 3. 32 vs 9. 47 ± 1. 61, P < 0. 05), in addition to alternatively activated (M2) macrophages within the bone marrow (23. 06 ± 5. 25 vs 1. 76 ± 0. 74, P < 0. 0001) and spleen (46. 51 ± 11. 18 vs 30. 58 ± 2. 64, P < 0. 05) compartments. All-trans retinoic acid (ATRA) treatment of PML/RARa mice reduced blast (immature cells) in the bone marrow (8.

62 ± 1. 81 vs 15. 76 ± 1. 25; P < 0. 05) and spleen (8. 75 ± 1. 31 vs 35. 21 ± 1. 55; P < 0. 0001) with no changes in the peripheral blood (10. 13 ± 3. 33 vs 7. 88 ± 1. 01; P > 0. 05), as well as reduced promyelocytes in the bone marrow (19. 79 ± 4. 84 vs 41. 23 ± 1. 81; P < 0. 05), peripheral blood (31. 65 ± 3. 92 vs 46. 09 ± 2. 84; P < 0.

05) and spleen (24. 84 ± 2. 03 vs 41. 46 ± 2. 39; P < 0. 001), and increased neutrophils of the peripheral blood (35. 48 ± 7. 24 vs 7. 83 ± 1. 40; P < 0. 05) which was corroborated by reducing of immature cells and increase of neutrophil in the stained smears from PML/RARa mice, thus confirming that this model can be used in drug development studies.

Our results show the effective induction of PML/RARa leukemia in BALB/c mice, thus producing a low-priced and reliable tool for investigating cellular immune responses in leukemia.

论文信息

作者
Shiraishi RN、Bombeiro AL、Castro TCL、Della Via FI、Santos I、Rego EM、Saad STO、Torello CO
第一作者单位
Hematology and Transfusion Medicine Center - Hemocentro, University of Campinas, 13083-878 Campinas, S&#xe3;o Paulo, Brazil.Brazil
通讯作者单位
Hematology and Transfusion Medicine Center - Hemocentro, University of Campinas, 13083-878 Campinas, S&#xe3;o Paulo, Brazil. Electronic address: cris.okuda@gmail.com.Brazil
期刊
Transplant immunology2023 Dec
原文标识
PubMed 37598913 · DOI 10.1016/j.trim.2023.101919