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在庫・価格 : 2026年03月02日 21時05分 現在

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LentiBlast Premium
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LBPX500 OZBオズ バイオサイエンス
OZ Biosciences
500 μl ¥62,000
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在庫・価格 : 2026年03月02日 21時05分 現在

LentiBlast Premium

  • 商品コード:LBPX500
  • メーカー:OZB
  • 包装:500μl
  • 価格: ¥62,000
  • 在庫:無(発注済)
使用文献
No. 文献情報 備考 参照
1 Ollivier M., eNeuro. 2021 Jan 28;8(1):ENEURO.0185-20.2020

PubMed
2 Ollivier M., Thesis Universitテゥ Montpellier, 2018.

PubMed
3 Teku G., Gene Chrom & cancer, 2023 doi.org/10.1002/gcc.23176

PubMed
4 Demsko P., Thesis university 2025 20.500.14332/61287

PubMed
5 Moon CY., 2025 Thesis Dissertation

PubMed
6 Tricoli L., bioRxiv 2024 doi.org/10.1101/2024.03.14.584404

PubMed
7 Verdys P., bioRxiv. doi: https://doi.org/10.1101/2023.07.27.550674

PubMed
8 Brown, AL., Thesis, 2020

PubMed
9 Coxon M., Thesis Dissertation 2024

PubMed
10 Garry D., Patent 2020 20200224218

PubMed
11 Alishala M., Challeng Res J., 2024 doi.org/10.5070/CR36572

PubMed
12 Geelen D., bioRxiv. 2025. doi.org/10.1101/2025.04.18.649516

PubMed
13 Rombouts Y., Res Sq. 2025 doi.org/10.21203/rs.3.rs-7879894/v1

PubMed
14 Raymond BBA., bioRxiv 2024 doi.org/10.1101/2024.05.20.594848

PubMed
15 DiSanza BL., HGG Adv. 2026 Jan 15;7(1):100525.

PubMed
16 Bolger I., bioRxiv. 2026 Jan 9:2026.01.09.698641

PubMed
17 DiSanza, BL., Thesis 2025 U Penn

PubMed
18 Ryan SK., Star Protocol 2020 Dec. doi.org/10.1016/j.xpro.2020.100190

PubMed
19 Arnoult N., Nature. 2017 (549), 548遯カ繝サ52.doi:10.1038/nature24023

PubMed
20 Maurel Ribes A., medRxiv, doi: https://doi.org/10.1101/2021.09.06.21262027

PubMed
21 Pickett-Leonard M., 2022 Thesis Dissertation U Min.

PubMed
22 Thompson E. Thesis 2021

PubMed
23 Evans, G. T., Thesis University of Oxford (2023)

PubMed
24 Hom WW., bioRxiv https://doi.org/10.1101/2024.01.29.577837

PubMed
25 Sharma AU., bioRxiv 2021 https://doi.org/10.1101/2021.09.07.459239

PubMed
26 Stathopoulou C., bioRxiv 2025, doi.org/10.1101/2025.02.26.640438

PubMed
27 Maynard LH., bioRxiv 2025 doi.org/10.1101/2025.03.05.640197;

PubMed
28 Epstein AL., Patent 2023 WO2020168298A2

PubMed
29 Epstein AL., Patent, 2016

PubMed
30 Raju K., bioRxiv. 2025., doi.org/10.1101/2025.03.28.646038

PubMed
31 Wang S et al. Aregs-IGFBP3-mediated SMC-like cells apoptosis impairs beige adipocytes formation in aged mice. Mol Metab 2025 May;95:102125
Wang S et al
2025/01/01
PubMed
32 Liu X et al. A mitochondrial surveillance mechanism activated by SRSF2 mutations in hematologic malignancies. J Clin Invest 2024 May;134(12)
Liu X et al
2024/01/01
PubMed
33 Ren JG et al. RAB27B controls palmitoylation-dependent NRAS trafficking and signaling in myeloid leukemia. J Clin Invest 2023 Jun;133(12)
Ren JG et al
2023/01/01
PubMed
34 Cortez LM et al. APOBEC3A is a prominent cytidine deaminase in breast cancer. PLoS Genet 2019 Dec;15(12):e1008545
Cortez LM et al
2019/01/01
PubMed
35 Fonseca GJ et al. Diverse motif ensembles specify non-redundant DNA binding activities of AP-1 family members in macrophages. Nat Commun 2019 01;10(1):414
Fonseca GJ et al
2019/01/01
PubMed
36 Shen Z et al. Systematic analysis of naturally occurring insertions and deletions that alter transcription factor spacing identifies tolerant and sensitive transcription factor pairs. Elife 2022 Jan;11
Shen Z et al
2022/01/01
PubMed
37 Esteves P et al. Crucial role of fatty acid oxidation in asthmatic bronchial smooth muscle remodelling. Eur Respir J 2021 Nov;58(5)
Esteves P et al
2021/01/01
PubMed
38 Dennis M et al. Her2 amplification, Rel-A, and Bach1 can influence APOBEC3A expression in breast cancer cells. PLoS Genet 2024 May;20(5):e1011293
Dennis M et al
2024/01/01
PubMed
39 Pellegrini JM et al. SLAMF7 and SLAMF8 receptors shape human plasmacytoid dendritic cell responses to intracellular bacteria. J Clin Invest 2025 Apr;135(8)
Pellegrini JM et al
2025/01/01
PubMed
40 Singh BN et al. A conserved HH-Gli1-Mycn network regulates heart regeneration from newt to human. Nat Commun 2018 10;9(1):4237
Singh BN et al
2018/01/01
PubMed
41 Holdreith N et al. LNK (SH2B3) inhibition expands healthy and Fanconi anemia human hematopoietic stem and progenitor cells. Blood Adv 2022 Feb;6(3):731-745
Holdreith N et al
2022/01/01
PubMed
42 Rousset F et al. Optimizing Synthetic miRNA Minigene Architecture for Efficient miRNA Hairpin Concatenation and Multi-target Gene Knockdown. Mol Ther Nucleic Acids 2019 Mar;14:351-363
Rousset F et al
2019/01/01
PubMed
43 Sajadi MM et al. A comprehensive engineering strategy improves potency and manufacturability of a near pan-neutralizing antibody against HIV. bioRxiv 2024 Oct;
Sajadi MM et al
2024/01/01
PubMed
44 Ma L et al. Tet-mediated DNA demethylation regulates specification of hematopoietic stem and progenitor cells during mammalian embryogenesis. Sci Adv 2022 Mar;8(9):eabm3470
Ma L et al
2022/01/01
PubMed
45 Brown AL et al. Single-stranded DNA binding proteins influence APOBEC3A substrate preference. Sci Rep 2021 Oct;11(1):21008
Brown AL et al
2021/01/01
PubMed
46 Baroncini L et al. Pro-inflammatory macrophages suppress HIV replication in humanized mice and <i>ex vivo</i> co-cultures. Front Immunol 2024;15:1439328
Baroncini L et al
2024/01/01
PubMed
47 Burton OT et al. The tissue-resident regulatory T&#xA0;cell pool is shaped by transient multi-tissue migration and a conserved residency program. Immunity 2024 Jul;57(7):1586-1602.e10
Burton OT et al
2024/01/01
PubMed
48 Cook NL et al. CRISPR-Cas9-mediated knockout of SPRY2 in human hepatocytes leads to increased glucose uptake and lipid droplet accumulation. BMC Endocr Disord 2019 Oct;19(1):115
Cook NL et al
2019/01/01
PubMed
49 Nassour J et al. Telomere-to-mitochondria signalling by ZBP1 mediates replicative crisis. Nature 2023 Feb;614(7949):767-773
Nassour J et al
2023/01/01
PubMed
50 Nassour J et al. Autophagic cell death restricts chromosomal instability during replicative crisis. Nature 2019 01;565(7741):659-663
Nassour J et al
2019/01/01
PubMed
51 Saed B et al. Increased vesicular dynamics and nanoscale clustering of IL-2 after T&#xA0;cell activation. Biophys J 2024 Aug;123(15):2343-2353
Saed B et al
2024/01/01
PubMed
52 Fukui T et al. A highly sensitive screening system to evaluate the reversibility of neuroendocrine prostate cancer to prostate adenocarcinoma. Cancer Med 2025 Mar;14(5):e70047
Fukui T et al
2025/01/01
PubMed
53 Flanagan S et al. Tumor Cholesterol Synthesis, Statin Use, and Lethal Prostate Cancer. Mol Cancer Res 2025 Dec;23(12):1025-1033
Flanagan S et al
2025/01/01
PubMed
54 Hirani R et al. BCL2 drives castration resistance in castration-sensitive prostate cancer by orchestrating reciprocal crosstalk between oncogenic pathways. Cell Rep 2025 Jun;44(6):115779
Hirani R et al
2025/01/01
PubMed
55 Chakraborty G et al. Significance of <i>BRCA2</i> and <i>RB1</i> Co-loss in Aggressive Prostate Cancer Progression. Clin Cancer Res 2020 Apr;26(8):2047-2064
Chakraborty G et al
2020/01/01
PubMed
56 Masuda S et al. Inhibition of PTPN3 Expressed in Activated Lymphocytes Enhances the Antitumor Effects of Anti-PD-1 Therapy in Head and Neck Cancer, Especially in Hypoxic Environments. J Immunother 2024 Apr;47(3):89-97
Masuda S et al
2024/01/01
PubMed
57 Choi YG et al. ETV2 transcriptionally activates Rig1 gene expression and promotes reprogramming of the endothelial lineage. Sci Rep 2024 Nov;14(1):28688
Choi YG et al
2024/01/01
PubMed
58 Gong W et al. ETV2 functions as a pioneer factor to regulate and reprogram the endothelial lineage. Nat Cell Biol 2022 May;24(5):672-684
Gong W et al
2022/01/01
PubMed
59 Verdys P et al. Ezrin, radixin, and moesin are dispensable for macrophage migration and cellular cortex mechanics. EMBO J 2024 Nov;43(21):4822-4845
Verdys P et al
2024/01/01
PubMed
60 Zhang P et al. Systematic Evaluation of GAPs and GEFs Identifies a Targetable Dependency for Hematopoietic Malignancies. Cancer Discov 2025 Dec;15(12):2530-2553
Zhang P et al
2025/01/01
PubMed
61 Abe Y et al. RANK ligand converts the NCoR/HDAC3 co-repressor to a PGC1&#x3B2;- and RNA-dependent co-activator of osteoclast gene expression. Mol Cell 2023 Oct;83(19):3421-3437.e11
Abe Y et al
2023/01/01
PubMed
62 S叩nchez-Iglesias S et al. Does Seipin Play a Role in Oxidative Stress Protection and Peroxisome Biogenesis? New Insights from Human Brain Autopsies. Neuroscience 2019 01;396:119-137
S叩nchez-Iglesias S et al
2019/01/01
PubMed
63 Ara炭jo-Vilar D et al. Association of metreleptin treatment and dietary intervention with neurological outcomes in Celia&#39;s encephalopathy. Eur. J. Hum. Genet. 2018 03;26(3):396-406
Ara炭jo-Vilar D et al
2018/01/01
PubMed
64 Kong R et al. Transcriptional Circuitry of NKX2-1 and SOX1 Defines an Unrecognized Lineage Subtype of Small-Cell Lung Cancer. Am J Respir Crit Care Med 2022 Dec;206(12):1480-1494
Kong R et al
2022/01/01
PubMed
65 Patel AS et al. Prototypical oncogene family Myc defines unappreciated distinct lineage states of small cell lung cancer. Sci Adv 2021 Jan;7(5)
Patel AS et al
2021/01/01
PubMed
66 Yan J et al. T cell receptor mimic CAR T cells targeting cathepsin G signal peptide. Leukemia 2025 Aug;39(8):1948-1959
Yan J et al
2025/01/01
PubMed
67 Su H et al. Generation of Anti-HIV CAR-T Cells for Preclinical Research. Methods Mol Biol 2024;2807:287-298
Su H et al
2024/01/01
PubMed
68 Sta Maria NS et al. Spatio-temporal biodistribution of <sup>89</sup>Zr-oxine labeled huLym-1-A-BB3z-CAR T-cells by PET imaging in a preclinical tumor model. Sci Rep 2021 Jul;11(1):15077
Sta Maria NS et al
2021/01/01
PubMed
69 Zheng L et al. A Humanized Lym-1 CAR with Novel DAP10/DAP12 Signaling Domains Demonstrates Reduced Tonic Signaling and Increased Antitumor Activity in B-Cell Lymphoma Models. Clin Cancer Res 2020 Jul;26(14):3694-3706
Zheng L et al
2020/01/01
PubMed
70 Zheng L et al. Lym-1 Chimeric Antigen Receptor T Cells Exhibit Potent Anti-Tumor Effects against B-Cell Lymphoma. Int J Mol Sci 2017 Dec;18(12)
Zheng L et al
2017/01/01
PubMed
71 Claireaux M et al. Low CCR5 expression protects HIV-specific CD4+ T cells of elite controllers from viral entry. Nat Commun 2022 Jan;13(1):521
Claireaux M et al
2022/01/01
PubMed
72 Benati D et al. Public T cell receptors confer high-avidity CD4 responses to HIV controllers. J. Clin. Invest. 2016 Jun;126(6):2093-108
Benati D et al
2016/01/01
PubMed
73 Chirayath TW et al. Activation of osmo-sensitive LRRC8 anion channels in macrophages is important for micro-crystallin joint inflammation. Nat Commun 2024 Sep;15(1):8179
Chirayath TW et al
2024/01/01
PubMed
74 Rogers BM et al. VISTA is an activating receptor in human monocytes. J Exp Med 2021 Aug;218(8)
Rogers BM et al
2021/01/01
PubMed
75 Greatbatch CJ et al. High throughput functional profiling of genes at intraocular pressure loci reveals distinct networks for glaucoma. Hum Mol Genet 2024 Apr;33(9):739-751
Greatbatch CJ et al
2024/01/01
PubMed
  • No.: 1
  • 文献情報:
    Ollivier M., eNeuro. 2021 Jan 28;8(1):ENEURO.0185-20.2020

  • 備考:
  • 参照:
    PubMed
  • No.: 2
  • 文献情報:
    Ollivier M., Thesis Universitテゥ Montpellier, 2018.

  • 備考:
  • 参照:
    PubMed
  • No.: 3
  • 文献情報:
    Teku G., Gene Chrom & cancer, 2023 doi.org/10.1002/gcc.23176

  • 備考:
  • 参照:
    PubMed
  • No.: 4
  • 文献情報:
    Demsko P., Thesis university 2025 20.500.14332/61287

  • 備考:
  • 参照:
    PubMed
  • No.: 5
  • 文献情報:
    Moon CY., 2025 Thesis Dissertation

  • 備考:
  • 参照:
    PubMed
  • No.: 6
  • 文献情報:
    Tricoli L., bioRxiv 2024 doi.org/10.1101/2024.03.14.584404

  • 備考:
  • 参照:
    PubMed
  • No.: 7
  • 文献情報:
    Verdys P., bioRxiv. doi: https://doi.org/10.1101/2023.07.27.550674

  • 備考:
  • 参照:
    PubMed
  • No.: 8
  • 文献情報:
    Brown, AL., Thesis, 2020

  • 備考:
  • 参照:
    PubMed
  • No.: 9
  • 文献情報:
    Coxon M., Thesis Dissertation 2024

  • 備考:
  • 参照:
    PubMed
  • No.: 10
  • 文献情報:
    Garry D., Patent 2020 20200224218

  • 備考:
  • 参照:
    PubMed
  • No.: 11
  • 文献情報:
    Alishala M., Challeng Res J., 2024 doi.org/10.5070/CR36572

  • 備考:
  • 参照:
    PubMed
  • No.: 12
  • 文献情報:
    Geelen D., bioRxiv. 2025. doi.org/10.1101/2025.04.18.649516

  • 備考:
  • 参照:
    PubMed
  • No.: 13
  • 文献情報:
    Rombouts Y., Res Sq. 2025 doi.org/10.21203/rs.3.rs-7879894/v1

  • 備考:
  • 参照:
    PubMed
  • No.: 14
  • 文献情報:
    Raymond BBA., bioRxiv 2024 doi.org/10.1101/2024.05.20.594848

  • 備考:
  • 参照:
    PubMed
  • No.: 15
  • 文献情報:
    DiSanza BL., HGG Adv. 2026 Jan 15;7(1):100525.

  • 備考:
  • 参照:
    PubMed
  • No.: 16
  • 文献情報:
    Bolger I., bioRxiv. 2026 Jan 9:2026.01.09.698641

  • 備考:
  • 参照:
    PubMed
  • No.: 17
  • 文献情報:
    DiSanza, BL., Thesis 2025 U Penn

  • 備考:
  • 参照:
    PubMed
  • No.: 18
  • 文献情報:
    Ryan SK., Star Protocol 2020 Dec. doi.org/10.1016/j.xpro.2020.100190

  • 備考:
  • 参照:
    PubMed
  • No.: 19
  • 文献情報:
    Arnoult N., Nature. 2017 (549), 548遯カ繝サ52.doi:10.1038/nature24023

  • 備考:
  • 参照:
    PubMed
  • No.: 20
  • 文献情報:
    Maurel Ribes A., medRxiv, doi: https://doi.org/10.1101/2021.09.06.21262027

  • 備考:
  • 参照:
    PubMed
  • No.: 21
  • 文献情報:
    Pickett-Leonard M., 2022 Thesis Dissertation U Min.

  • 備考:
  • 参照:
    PubMed
  • No.: 22
  • 文献情報:
    Thompson E. Thesis 2021

  • 備考:
  • 参照:
    PubMed
  • No.: 23
  • 文献情報:
    Evans, G. T., Thesis University of Oxford (2023)

  • 備考:
  • 参照:
    PubMed
  • No.: 24
  • 文献情報:
    Hom WW., bioRxiv https://doi.org/10.1101/2024.01.29.577837

  • 備考:
  • 参照:
    PubMed
  • No.: 25
  • 文献情報:
    Sharma AU., bioRxiv 2021 https://doi.org/10.1101/2021.09.07.459239

  • 備考:
  • 参照:
    PubMed
  • No.: 26
  • 文献情報:
    Stathopoulou C., bioRxiv 2025, doi.org/10.1101/2025.02.26.640438

  • 備考:
  • 参照:
    PubMed
  • No.: 27
  • 文献情報:
    Maynard LH., bioRxiv 2025 doi.org/10.1101/2025.03.05.640197;

  • 備考:
  • 参照:
    PubMed
  • No.: 28
  • 文献情報:
    Epstein AL., Patent 2023 WO2020168298A2

  • 備考:
  • 参照:
    PubMed
  • No.: 29
  • 文献情報:
    Epstein AL., Patent, 2016

  • 備考:
  • 参照:
    PubMed
  • No.: 30
  • 文献情報:
    Raju K., bioRxiv. 2025., doi.org/10.1101/2025.03.28.646038

  • 備考:
  • 参照:
    PubMed
  • No.: 31
  • 文献情報:
    Wang S et al. Aregs-IGFBP3-mediated SMC-like cells apoptosis impairs beige adipocytes formation in aged mice. Mol Metab 2025 May;95:102125
    Wang S et al
    2025/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 32
  • 文献情報:
    Liu X et al. A mitochondrial surveillance mechanism activated by SRSF2 mutations in hematologic malignancies. J Clin Invest 2024 May;134(12)
    Liu X et al
    2024/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 33
  • 文献情報:
    Ren JG et al. RAB27B controls palmitoylation-dependent NRAS trafficking and signaling in myeloid leukemia. J Clin Invest 2023 Jun;133(12)
    Ren JG et al
    2023/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 34
  • 文献情報:
    Cortez LM et al. APOBEC3A is a prominent cytidine deaminase in breast cancer. PLoS Genet 2019 Dec;15(12):e1008545
    Cortez LM et al
    2019/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 35
  • 文献情報:
    Fonseca GJ et al. Diverse motif ensembles specify non-redundant DNA binding activities of AP-1 family members in macrophages. Nat Commun 2019 01;10(1):414
    Fonseca GJ et al
    2019/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 36
  • 文献情報:
    Shen Z et al. Systematic analysis of naturally occurring insertions and deletions that alter transcription factor spacing identifies tolerant and sensitive transcription factor pairs. Elife 2022 Jan;11
    Shen Z et al
    2022/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 37
  • 文献情報:
    Esteves P et al. Crucial role of fatty acid oxidation in asthmatic bronchial smooth muscle remodelling. Eur Respir J 2021 Nov;58(5)
    Esteves P et al
    2021/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 38
  • 文献情報:
    Dennis M et al. Her2 amplification, Rel-A, and Bach1 can influence APOBEC3A expression in breast cancer cells. PLoS Genet 2024 May;20(5):e1011293
    Dennis M et al
    2024/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 39
  • 文献情報:
    Pellegrini JM et al. SLAMF7 and SLAMF8 receptors shape human plasmacytoid dendritic cell responses to intracellular bacteria. J Clin Invest 2025 Apr;135(8)
    Pellegrini JM et al
    2025/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 40
  • 文献情報:
    Singh BN et al. A conserved HH-Gli1-Mycn network regulates heart regeneration from newt to human. Nat Commun 2018 10;9(1):4237
    Singh BN et al
    2018/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 41
  • 文献情報:
    Holdreith N et al. LNK (SH2B3) inhibition expands healthy and Fanconi anemia human hematopoietic stem and progenitor cells. Blood Adv 2022 Feb;6(3):731-745
    Holdreith N et al
    2022/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 42
  • 文献情報:
    Rousset F et al. Optimizing Synthetic miRNA Minigene Architecture for Efficient miRNA Hairpin Concatenation and Multi-target Gene Knockdown. Mol Ther Nucleic Acids 2019 Mar;14:351-363
    Rousset F et al
    2019/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 43
  • 文献情報:
    Sajadi MM et al. A comprehensive engineering strategy improves potency and manufacturability of a near pan-neutralizing antibody against HIV. bioRxiv 2024 Oct;
    Sajadi MM et al
    2024/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 44
  • 文献情報:
    Ma L et al. Tet-mediated DNA demethylation regulates specification of hematopoietic stem and progenitor cells during mammalian embryogenesis. Sci Adv 2022 Mar;8(9):eabm3470
    Ma L et al
    2022/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 45
  • 文献情報:
    Brown AL et al. Single-stranded DNA binding proteins influence APOBEC3A substrate preference. Sci Rep 2021 Oct;11(1):21008
    Brown AL et al
    2021/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 46
  • 文献情報:
    Baroncini L et al. Pro-inflammatory macrophages suppress HIV replication in humanized mice and <i>ex vivo</i> co-cultures. Front Immunol 2024;15:1439328
    Baroncini L et al
    2024/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 47
  • 文献情報:
    Burton OT et al. The tissue-resident regulatory T&#xA0;cell pool is shaped by transient multi-tissue migration and a conserved residency program. Immunity 2024 Jul;57(7):1586-1602.e10
    Burton OT et al
    2024/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 48
  • 文献情報:
    Cook NL et al. CRISPR-Cas9-mediated knockout of SPRY2 in human hepatocytes leads to increased glucose uptake and lipid droplet accumulation. BMC Endocr Disord 2019 Oct;19(1):115
    Cook NL et al
    2019/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 49
  • 文献情報:
    Nassour J et al. Telomere-to-mitochondria signalling by ZBP1 mediates replicative crisis. Nature 2023 Feb;614(7949):767-773
    Nassour J et al
    2023/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 50
  • 文献情報:
    Nassour J et al. Autophagic cell death restricts chromosomal instability during replicative crisis. Nature 2019 01;565(7741):659-663
    Nassour J et al
    2019/01/01
  • 備考:
  • 参照:
    PubMed
  • No.: 51
  • 文献情報:
    Saed B et al. Increased vesicular dynamics and nanoscale clustering of IL-2 after T&#xA0;cell activation. Biophys J 2024 Aug;123(15):2343-2353
    Saed B et al
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