产品简要
公司名称 :
Novus Biologicals
其他品牌 :
IMGENEX
产品类型 :
抗体
产品名称 :
Rad51抗体(14B4)
目录 :
NB100-148
规格 :
100微升
价格 :
499美元
克隆性 :
单克隆
宿主 :
小鼠
共轭标签 :
未共轭
克隆名称 :
14B4
反应物种 :
人类, 小鼠, 大鼠, , roundworm
应用 :
免疫印迹, 免疫组化, 免疫细胞化学, 免疫沉淀, 染色质免疫沉淀 , 免疫组化-石蜡切片, 免疫组化-冰冻切片, proximity ligation assay
更多信息或购买 :
文章摘录数: 58
参考文献
Neizer Ashun F, Dwivedi S, Dey A, Thavathiru E, Berry W, Lees Miller S, et al. KRCC1, a modulator of the DNA damage response. Nucleic Acids Res. 2022;50:11028-11039 pubmed 出版商
K x131 yga E, Ad x131 g xfc zel Z, xd6 nay U xe7 ar E. Temozolomide increases heat shock proteins in extracellular vesicles released from glioblastoma cells. Mol Biol Rep. 2022;49:8701-8713 pubmed 出版商
Zhou Z, Yin H, Suye S, Zhu F, Cai H, Fu C. The changes of DNA double-strand breaks and DNA repair during ovarian reserve formation in mice. Reprod Biol. 2022;22:100603 pubmed 出版商
Fernando M, Duijf P, Proctor M, Stevenson A, Ehmann A, Vora S, et al. Dysregulated G2 phase checkpoint recovery pathway reduces DNA repair efficiency and increases chromosomal instability in a wide range of tumours. Oncogenesis. 2021;10:41 pubmed 出版商
Veo B, Danis E, Pierce A, Wang D, Fosmire S, Sullivan K, et al. Transcriptional control of DNA repair networks by CDK7 regulates sensitivity to radiation in MYC-driven medulloblastoma. Cell Rep. 2021;35:109013 pubmed 出版商
Kaminski P, Hong S, Kono T, Hoover P, Laimins L. Topoisomerase 2β Induces DNA Breaks To Regulate Human Papillomavirus Replication. MBio. 2021;12: pubmed 出版商
Dong C, An L, Yu C, Huen M. A DYRK1B-dependent pathway suppresses rDNA transcription in response to DNA damage. Nucleic Acids Res. 2021;: pubmed 出版商
Correll Tash S, Lilley B, Salmons Iv H, Mlynarski E, Franconi C, McNamara M, et al. Double strand breaks (DSBs) as indicators of genomic instability in PATRR-mediated translocations. Hum Mol Genet. 2021;29:3872-3881 pubmed 出版商
Garcia Muse T. Detection of DSBs in C. elegans Meiosis. Methods Mol Biol. 2021;2153:287-293 pubmed 出版商
Ma L, Ruan J, Song J, Wen L, Yang D, Zhao J, et al. MiCas9 increases large size gene knock-in rates and reduces undesirable on-target and off-target indel edits. Nat Commun. 2020;11:6082 pubmed 出版商
Sriramkumar S, Matthews T, Ghobashi A, Miller S, VanderVere Carozza P, Pawelczak K, et al. Platinum-Induced Ubiquitination of Phosphorylated H2AX by RING1A Is Mediated by Replication Protein A in Ovarian Cancer. Mol Cancer Res. 2020;18:1699-1710 pubmed 出版商
Hinch A, Becker P, Li T, Moralli D, Zhang G, Bycroft C, et al. The Configuration of RPA, RAD51, and DMC1 Binding in Meiosis Reveals the Nature of Critical Recombination Intermediates. Mol Cell. 2020;79:689-701.e10 pubmed 出版商
Kono T, Hoover P, Poropatich K, Paunesku T, Mittal B, Samant S, et al. Activation of DNA damage repair factors in HPV positive oropharyngeal cancers. Virology. 2020;547:27-34 pubmed 出版商
Feng W, Simpson D, Carvajal Garcia J, Price B, Kumar R, Mose L, et al. Genetic determinants of cellular addiction to DNA polymerase theta. Nat Commun. 2019;10:4286 pubmed 出版商
Tu Z, Mu X, Chen X, Geng Y, Zhang Y, Li Q, et al. Dibutyl phthalate exposure disrupts the progression of meiotic prophase I by interfering with homologous recombination in fetal mouse oocytes. Environ Pollut. 2019;252:388-398 pubmed 出版商
Deveryshetty J, Peterlini T, Ryzhikov M, Brahiti N, Dellaire G, Masson J, et al. Novel RNA and DNA strand exchange activity of the PALB2 DNA binding domain and its critical role for DNA repair in cells. elife. 2019;8: pubmed 出版商
Shin N, Cuenca L, Karthikraj R, Kannan K, COLAIACOVO M. Assessing effects of germline exposure to environmental toxicants by high-throughput screening in C. elegans. PLoS Genet. 2019;15:e1007975 pubmed 出版商
Garcia Muse T, Galindo Diaz U, Garcia Rubio M, Martin J, Polanowska J, O Reilly N, et al. A Meiotic Checkpoint Alters Repair Partner Bias to Permit Inter-sister Repair of Persistent DSBs. Cell Rep. 2019;26:775-787.e5 pubmed 出版商
Sulkowski P, Sundaram R, Oeck S, Corso C, Liu Y, Noorbakhsh S, et al. Krebs-cycle-deficient hereditary cancer syndromes are defined by defects in homologous-recombination DNA repair. Nat Genet. 2018;50:1086-1092 pubmed 出版商
Periasamy J, Kurdekar V, Jasti S, Nijaguna M, Boggaram S, Hurakadli M, et al. Targeting Phosphopeptide Recognition by the Human BRCA1 Tandem BRCT Domain to Interrupt BRCA1-Dependent Signaling. Cell Chem Biol. 2018;25:677-690.e12 pubmed 出版商
Scanlon S, Hegan D, Sulkowski P, Glazer P. Suppression of homology-dependent DNA double-strand break repair induces PARP inhibitor sensitivity in VHL-deficient human renal cell carcinoma. Oncotarget. 2018;9:4647-4660 pubmed 出版商
Li Q, Xie W, Wang N, Li C, Wang M. CDC7-dependent transcriptional regulation of RAD54L is essential for tumorigenicity and radio-resistance of glioblastoma. Transl Oncol. 2018;11:300-306 pubmed 出版商
Ha K, Ma C, Lin H, Tang L, Lian Z, Zhao F, et al. The anaphase promoting complex impacts repair choice by protecting ubiquitin signalling at DNA damage sites. Nat Commun. 2017;8:15751 pubmed 出版商
Nadarajan S, Lambert T, Altendorfer E, Gao J, Blower M, Waters J, et al. Polo-like kinase-dependent phosphorylation of the synaptonemal complex protein SYP-4 regulates double-strand break formation through a negative feedback loop. elife. 2017;6: pubmed 出版商
Pauty J, Couturier A, Rodrigue A, Caron M, Coulombe Y, Dellaire G, et al. Cancer-causing mutations in the tumor suppressor PALB2 reveal a novel cancer mechanism using a hidden nuclear export signal in the WD40 repeat motif. Nucleic Acids Res. 2017;45:2644-2657 pubmed 出版商
Phillips A, Millet A, Tigano M, Dubois S, Crimmins H, Babin L, et al. Single-Molecule Analysis of mtDNA Replication Uncovers the Basis of the Common Deletion. Mol Cell. 2017;65:527-538.e6 pubmed 出版商
Li M, Chen Q, Yu X. Chemopreventive Effects of ROS Targeting in a Murine Model of BRCA1-Deficient Breast Cancer. Cancer Res. 2017;77:448-458 pubmed 出版商
Ackermann L, Schell M, Pokrzywa W, Kevei Ã, Gartner A, Schumacher B, et al. E4 ligase-specific ubiquitination hubs coordinate DNA double-strand-break repair and apoptosis. Nat Struct Mol Biol. 2016;23:995-1002 pubmed 出版商
Dok R, Abbasi Asbagh L, Van Limbergen E, SABLINA A, Nuyts S. Nuclear p16INK4a expression predicts enhanced radiation response in head and neck cancers. Oncotarget. 2016;7:38785-38795 pubmed 出版商
Liu H, Yan P, Fanning E. Human DNA helicase B functions in cellular homologous recombination and stimulates Rad51-mediated 5'-3' heteroduplex extension in vitro. PLoS ONE. 2015;10:e0116852 pubmed 出版商
Cornago M, Garcia Alberich C, Blasco Angulo N, Vall Llaura N, Nager M, Herreros J, et al. Histone deacetylase inhibitors promote glioma cell death by G2 checkpoint abrogation leading to mitotic catastrophe. Cell Death Dis. 2014;5:e1435 pubmed 出版商
Del Nagro C, Choi J, Xiao Y, Rangell L, Mohan S, Pandita A, et al. Chk1 inhibition in p53-deficient cell lines drives rapid chromosome fragmentation followed by caspase-independent cell death. Cell Cycle. 2014;13:303-14 pubmed 出版商
Wu X, Xu Y, Feng K, Tompkins J, Her C. MutS homologue hMSH5: recombinational DSB repair and non-synonymous polymorphic variants. PLoS ONE. 2013;8:e73284 pubmed 出版商
Lans H, Lindvall J, Thijssen K, Karambelas A, Cupac D, Fensg rd O, et al. DNA damage leads to progressive replicative decline but extends the life span of long-lived mutant animals. Cell Death Differ. 2013;20:1709-18 pubmed 出版商
Buonanno M, Garty G, Grad M, Gendrel M, Hobert O, Brenner D. Microbeam irradiation of C. elegans nematode in microfluidic channels. Radiat Environ Biophys. 2013;52:531-7 pubmed 出版商
Chu Y, Wu X, Xu Y, Her C. MutS homologue hMSH4: interaction with eIF3f and a role in NHEJ-mediated DSB repair. Mol Cancer. 2013;12:51 pubmed 出版商
Tompkins J, Wu X, Her C. MutS homologue hMSH5: role in cisplatin-induced DNA damage response. Mol Cancer. 2012;11:10 pubmed 出版商
Moldovan G, Dejsuphong D, Petalcorin M, Hofmann K, Takeda S, Boulton S, et al. Inhibition of homologous recombination by the PCNA-interacting protein PARI. Mol Cell. 2012;45:75-86 pubmed 出版商
Meerang M, Ritz D, Paliwal S, Garajova Z, Bosshard M, Mailand N, et al. The ubiquitin-selective segregase VCP/p97 orchestrates the response to DNA double-strand breaks. Nat Cell Biol. 2011;13:1376-82 pubmed 出版商
Harper N, Rillo R, Jover Gil S, Assaf Z, Bhalla N, Dernburg A. Pairing centers recruit a Polo-like kinase to orchestrate meiotic chromosome dynamics in C. elegans. Dev Cell. 2011;21:934-47 pubmed 出版商
Lee M, Daniels M, Garnett M, Venkitaraman A. A mitotic function for the high-mobility group protein HMG20b regulated by its interaction with the BRC repeats of the BRCA2 tumor suppressor. Oncogene. 2011;30:3360-9 pubmed 出版商
Klammer H, KADHIM M, Iliakis G. Evidence of an adaptive response targeting DNA nonhomologous end joining and its transmission to bystander cells. Cancer Res. 2010;70:8498-506 pubmed 出版商
Ammazzalorso F, Pirzio L, Bignami M, Franchitto A, Pichierri P. ATR and ATM differently regulate WRN to prevent DSBs at stalled replication forks and promote replication fork recovery. EMBO J. 2010;29:3156-69 pubmed 出版商
Graeser M, McCarthy A, Lord C, Savage K, Hills M, Salter J, et al. A marker of homologous recombination predicts pathologic complete response to neoadjuvant chemotherapy in primary breast cancer. Clin Cancer Res. 2010;16:6159-68 pubmed 出版商
Bowen C, Gelmann E. NKX3.1 activates cellular response to DNA damage. Cancer Res. 2010;70:3089-97 pubmed 出版商
Suzuki K, Yamauchi M, Oka Y, Suzuki M, Yamashita S. A novel and simple micro-irradiation technique for creating localized DNA double-strand breaks. Nucleic Acids Res. 2010;38:e129 pubmed 出版商
Moldovan G, Madhavan M, Mirchandani K, McCaffrey R, Vinciguerra P, D Andrea A. DNA polymerase POLN participates in cross-link repair and homologous recombination. Mol Cell Biol. 2010;30:1088-96 pubmed 出版商
Dungey F, Caldecott K, Chalmers A. Enhanced radiosensitization of human glioma cells by combining inhibition of poly(ADP-ribose) polymerase with inhibition of heat shock protein 90. Mol Cancer Ther. 2009;8:2243-54 pubmed 出版商
Carlessi L, De Filippis L, Lecis D, Vescovi A, Delia D. DNA-damage response, survival and differentiation in vitro of a human neural stem cell line in relation to ATM expression. Cell Death Differ. 2009;16:795-806 pubmed 出版商
Stewart G, Stankovic T, Byrd P, Wechsler T, Miller E, Huissoon A, et al. RIDDLE immunodeficiency syndrome is linked to defects in 53BP1-mediated DNA damage signaling. Proc Natl Acad Sci U S A. 2007;104:16910-5 pubmed
Shim K, Schmutte C, Tombline G, Heinen C, Fishel R. hXRCC2 enhances ADP/ATP processing and strand exchange by hRAD51. J Biol Chem. 2004;279:30385-94 pubmed
Warren M, Lord C, Masabanda J, Griffin D, Ashworth A. Phenotypic effects of heterozygosity for a BRCA2 mutation. Hum Mol Genet. 2003;12:2645-56 pubmed
Kao G, McKenna W, Guenther M, Muschel R, Lazar M, Yen T. Histone deacetylase 4 interacts with 53BP1 to mediate the DNA damage response. J Cell Biol. 2003;160:1017-27 pubmed
Tarsounas M, Davies D, West S. BRCA2-dependent and independent formation of RAD51 nuclear foci. Oncogene. 2003;22:1115-23 pubmed
French C, Masson J, Griffin C, O Regan P, West S, Thacker J. Role of mammalian RAD51L2 (RAD51C) in recombination and genetic stability. J Biol Chem. 2002;277:19322-30 pubmed 出版商
Wiese C, Collins D, Albala J, Thompson L, Kronenberg A, Schild D. Interactions involving the Rad51 paralogs Rad51C and XRCC3 in human cells. Nucleic Acids Res. 2002;30:1001-8 pubmed
Masson J, Tarsounas M, Stasiak A, Stasiak A, Shah R, McIlwraith M, et al. Identification and purification of two distinct complexes containing the five RAD51 paralogs. Genes Dev. 2001;15:3296-307 pubmed
Masson J, Davies A, Hajibagheri N, Van Dyck E, Benson F, Stasiak A, et al. The meiosis-specific recombinase hDmc1 forms ring structures and interacts with hRad51. EMBO J. 1999;18:6552-60 pubmed
图像
图像 1 :
Novus Biologicals NB100-148 图像 1
Western Blot: Rad51 Antibody (14B4) [NB100-148] - eIF3f facilitates hMSH4 stabilization. Western blotting analysis of the levels of HDAC3, hRad51, and VBP1 expression in 293T, 293T/eIF3f, and 293T/eIF3f-hMSH4 cells. 293T/eIF3f-hMSH4 cells treated with 1 or 10 Gy IR were fractionated at 6 hrs post-treatment and the levels of hMSH4 and eIF3f in the nuclear and cytoplasmic fractions were determined by immunoblotting. Alpha-tubulin was used as a marker for the cytoplasmic fraction. Image collected and cropped by CiteAb from the following publication (https://molecular-cancer.biomedcentral.com/articles/10.1186/1476-4598-12-51) licensed under a CC-BY licence.
产品信息
品牌 :
Novus
MasterCode :
NB100-148
SKU号 :
NB100-148
产品名称 :
Rad51抗体(14B4)
描述 :
The Rad51 Antibody (14B4) from NB100-148 is a nb100-148 antibody to . This antibody reacts with dna repair, homologous recombination. The Rad51 Antibody (14B4) has been validated for the following applications: Q06609.
靶标 :
Rad51
类别 :
一抗
单位尺寸 :
100微升
缓冲液 :
PBS, 20% 甘油(pH7)
克隆性 :
单克隆
克隆 :
14B4
共轭标签 :
未共轭
宿主 :
小鼠
免疫原 :
全长(氨基酸1-338)Rad51在大肠杆菌中表达
抗体亚型 :
IgG2b
纯度 :
抗原亲和纯化
物种 :
Human, Mouse, Rat, C. elegans, Chicken
理论上的分子量 :
37 kDa
基因符号 :
RAD51
images :
https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0020.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0020.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0020.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0020.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0020.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0021.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0021.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0021.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0021.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0021.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunohistochemistry-Paraffin-NB100-148-img0003.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunohistochemistry-Paraffin-NB100-148-img0003.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunohistochemistry-Paraffin-NB100-148-img0003.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunohistochemistry-Paraffin-NB100-148-img0003.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunohistochemistry-Paraffin-NB100-148-img0003.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0009.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0009.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0009.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0009.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0009.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0011.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0011.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0011.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0011.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0011.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0019.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0019.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0019.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0019.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0019.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0004.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0004.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0004.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0004.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunocytochemistry-Immunofluorescence-NB100-148-img0004.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunoprecipitation-NB100-148-img0005.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunoprecipitation-NB100-148-img0005.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunoprecipitation-NB100-148-img0005.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunoprecipitation-NB100-148-img0005.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Immunoprecipitation-NB100-148-img0005.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0006.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0006.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0006.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0006.jpg, https://aeroglobalimagesprod.blob.core.windows.net/images/datasheets/Rad51-Antibody-(14B4)-Western-Blot-NB100-148-img0006.jpg
accessionNumbers :
Q06609
应用 :
Western Blot, Immunohistochemistry, Immunocytochemistry/Immunofluorescence, Immunoprecipitation, Immunohistochemistry-Paraffin, Immunohistochemistry-Frozen, In vitro assay, Proximity Ligation Assay, Chromatin Immunoprecipitation (ChIP), Knockdown Validated
美元 :
499美元
别名 :
BRCC5, HRAD51, HsRAD51, HsT16930, RAD51 (S. cerevisiae) homolog (E coli RecA homolog), RAD51 homolog (RecA homolog, E. coli) (S. cerevisiae), RAD51 homolog A, RAD51ABRCA1/BRCA2-containing complex, subunit 5, RAD51L3, RecA, E. coli, homolog of, RECADNA repair protein RAD51 homolog 1, RecA-like protein, recombination protein A
储存 :
Store at 4C short term. Aliquot and store at -20C long term. Avoid freeze-thaw cycles.
更多信息或购买 :
公司信息
Novus Biologicals
10771 E Easter Ave
Centennial, CO 80112
technical@novusbio.com
https://www.novusbio.com
1-888-506-6887 303-730-1950
公司总部: 美国
Novus Biologicals的任务是开发最先进的新产品及市场行销来加速生物科研的新发现。藉由高效率的组织分工,Novus Biologicals建立了一个将生物学术团体的成果快速商品化的平台。我们的产品除了附有详细的产品资讯外,Novus Biologicals更提供完整的技术支援及服务。利用快速有效的市场通路以便迅速提供所有的科研学者最先进的研究试剂,Novus Biologicals扮演市场上重要的角色。