Mesna (BioDeep_00000003574)

 

Secondary id: BioDeep_00000400443

natural product human metabolite PANOMIX_OTCML-2023 Endogenous


代谢物信息卡片


2-Mercaptoethanesulfonic acid solution

化学式: C2H6O3S2 (141.9758)
中文名称: 2-巯基乙磺酸
谱图信息: 最多检出来源 Homo sapiens(blood) 31.98%

分子结构信息

SMILES: C(CS(=O)(=O)O)S
InChI: InChI=1S/C2H6O3S2/c3-7(4,5)2-1-6/h6H,1-2H2,(H,3,4,5)

描述信息

Mesna is a chemoprotectant. Chemoprotectants have been developed as a means of ameliorating the toxicity associated with cytotoxic agents by providing site-specific protection for normal tissues, without compromising antitumour efficacy. Mesna eliminates the risk of therapy-limiting urotoxic side effects of oxazaphosphorines. Mesna is widely used for the prevention of cyclophosphamide-related hemorrhagic cystitis. It has been associated with hypersensitivity-like cutaneous and systemic reactions in adult patients. Mesna offers significant uroprotection in patients receiving high dose cyclophosphamide, and is widely used in paediatric oncology practice It is, therefore, important to recognize that it may be associated with a rare but significant systemic adverse reaction. A hypersensitivity-like reaction to mesna was first reported in a young adult receiving treatment for Hodgkin disease over 20 years ago. Oral administration of mesna can facilitate outpatient ifosfamide therapy. Blood and urinary mesna concentrations are more steady and prolonged after oral delivery compared with after intravenous delivery. (PMID: 16333822, 10193684, 1485175) [HMDB]
Mesna is a chemoprotectant. Chemoprotectants have been developed as a means of ameliorating the toxicity associated with cytotoxic agents by providing site-specific protection for normal tissues, without compromising antitumour efficacy. Mesna eliminates the risk of therapy-limiting urotoxic side effects of oxazaphosphorines. Mesna is widely used for the prevention of cyclophosphamide-related hemorrhagic cystitis. It has been associated with hypersensitivity-like cutaneous and systemic reactions in adult patients. Mesna offers significant uroprotection in patients receiving high dose cyclophosphamide, and is widely used in paediatric oncology practice It is, therefore, important to recognize that it may be associated with a rare but significant systemic adverse reaction. A hypersensitivity-like reaction to mesna was first reported in a young adult receiving treatment for Hodgkin disease over 20 years ago. Oral administration of mesna can facilitate outpatient ifosfamide therapy. Blood and urinary mesna concentrations are more steady and prolonged after oral delivery compared with after intravenous delivery. (PMID: 16333822, 10193684, 1485175).
Acquisition and generation of the data is financially supported in part by CREST/JST.
D020011 - Protective Agents

同义名列表

65 个代谢物同义名

2-Mercaptoethanesulfonic acid solution; Bristol myers squibb brand OF mesna; Bristol-myers squibb brand OF mesna; 2-Mercaptoethanesulphonate, sodium; beta-Mercaptoethanesulphonic acid; Sodium 2-mercaptoethanesulphonate; beta-Mercaptoethanesulfonic acid; Sodium 2-mercaptoethanesulfonate; 2-sulfanylethane-1-sulfonic acid; b-Mercaptoethanesulphonic acid; Β-mercaptoethanesulphonic acid; 2-Mercaptoethanesulphonic acid; 2-Sulphanylethylsulphonic acid; 2-Mercaptoethylsulphonic acid; Β-mercaptoethanesulfonic acid; 2-Mercaptoethanesulfonic acid; b-Mercaptoethanesulfonic acid; beta-Mercaptoethanesulphonate; beta-Mercaptoethanesulfonate; 2-Mercaptoethylsulfonic acid; 2-Sulfanylethylsulfonic acid; ASTA medica brand OF mesna; 2-Sulphanylethylsulphonate; Β-mercaptoethanesulphonate; b-Mercaptoethanesulphonate; 2-Mercaptoethanesulphonate; 1-THIOETHANEsulphonic acid; Cell pharm brand OF mesna; 2-Mercaptoethylsulphonate; 2 Mercaptoethanesulfonate; b-Mercaptoethanesulfonate; 2-Mercaptoethanesulfonate; Β-mercaptoethanesulfonate; 1-THIOETHANEsulfonIC ACID; 2-Mercaptoethylsulfonate; 2-Sulfanylethylsulfonate; Kendrick brand OF mesna; 1-THIOETHANEsulphonate; 1-THIOETHANEsulfonate; Sanfer brand OF mesna; Mesna kendrick brand; UCB brand OF mesna; Reduced coenzyme m; Mesna sanfer brand; Mistabronco; ASTA-D 7093; ASTA D 7093; Reduced com; Coenzyme M; Coenzima m; Uromitexan; ASTAD 7093; MESNA cell; MESNA-cell; Mistabron; Coenzym m; Mucofluid; Mitexan; Mesnex; HS-CoM; Mesnum; Ziken; MESNA; CoM; Coenzyme M



数据库引用编号

32 个数据库交叉引用编号

分类词条

相关代谢途径

Reactome(0)

BioCyc(0)

PlantCyc(0)

代谢反应

0 个相关的代谢反应过程信息。

Reactome(0)

BioCyc(0)

WikiPathways(0)

Plant Reactome(0)

INOH(0)

PlantCyc(0)

COVID-19 Disease Map(0)

PathBank(0)

PharmGKB(0)

1 个相关的物种来源信息

在这里通过桑基图来展示出与当前的这个代谢物在我们的BioDeep知识库中具有相关联信息的其他代谢物。在这里进行关联的信息来源主要有:

  • PubMed: 来源于PubMed文献库中的文献信息,我们通过自然语言数据挖掘得到的在同一篇文献中被同时提及的相关代谢物列表,这个列表按照代谢物同时出现的文献数量降序排序,取前10个代谢物作为相关研究中关联性很高的代谢物集合展示在桑基图中。
  • NCBI Taxonomy: 通过文献数据挖掘,得到的代谢物物种来源信息关联。这个关联信息同样按照出现的次数降序排序,取前10个代谢物作为高关联度的代谢物集合展示在桑吉图上。
  • Chemical Taxonomy: 在物质分类上处于同一个分类集合中的其他代谢物
  • Chemical Reaction: 在化学反应过程中,存在为当前代谢物相关联的生化反应过程中的反应底物或者反应产物的关联代谢物信息。

点击图上的相关代谢物的名称,可以跳转到相关代谢物的信息页面。

亚细胞结构定位 关联基因列表
Cytoplasm 8 ADARB2, ALB, CASP3, CAT, FH, MTR, TXN, XDH
Peripheral membrane protein 1 HSD17B6
Nucleus 8 ACR, ALB, CASP3, FH, GLRX, MPO, PARP1, TXN
cytosol 11 ALB, CASP3, CAT, FH, GLRX, GPT, GSR, MTR, PARP1, TXN, XDH
nuclear body 1 PARP1
centrosome 1 ALB
nucleoplasm 5 CASP3, CD2, MPO, PARP1, TXN
Cell membrane 2 CD2, TNF
Early endosome membrane 1 HSD17B6
cell surface 2 CD2, TNF
glutamatergic synapse 1 CASP3
Golgi apparatus 2 ALB, CD2
mitochondrial inner membrane 2 ATP5ME, HADHA
neuronal cell body 2 CASP3, TNF
Cytoplasm, cytosol 1 PARP1
Lysosome 1 MPO
plasma membrane 2 CD2, TNF
Membrane 2 CAT, PARP1
extracellular exosome 8 ALB, CAT, FH, GLRX, GPT, GSR, MPO, TXN
Lumenal side 1 HSD17B6
endoplasmic reticulum 2 ALB, HSD17B6
extracellular space 4 ALB, MPO, TNF, XDH
mitochondrion 6 ATP5ME, CAT, FH, GSR, HADHA, PARP1
protein-containing complex 5 ACR, ALB, CAT, CD2, PARP1
intracellular membrane-bounded organelle 3 CAT, HSD17B6, MPO
Microsome membrane 1 HSD17B6
postsynaptic density 1 CASP3
Single-pass type I membrane protein 1 CD2
Secreted 2 ALB, TXN
extracellular region 7 ACR, ALB, CAT, CD2, MPO, TNF, TXN
cytoplasmic side of plasma membrane 1 CD2
mitochondrial matrix 3 CAT, FH, GSR
anchoring junction 1 ALB
transcription regulator complex 1 PARP1
external side of plasma membrane 3 CD2, GSR, TNF
nucleolus 2 ADARB2, PARP1
cell-cell junction 1 CD2
Golgi-associated vesicle 1 ACR
recycling endosome 1 TNF
Single-pass type II membrane protein 1 TNF
Mitochondrion inner membrane 1 HADHA
Membrane raft 1 TNF
focal adhesion 1 CAT
mitochondrial nucleoid 1 HADHA
Peroxisome 2 CAT, XDH
sarcoplasmic reticulum 1 XDH
Peroxisome matrix 1 CAT
peroxisomal matrix 1 CAT
peroxisomal membrane 1 CAT
secretory granule 1 MPO
ciliary basal body 1 ALB
chromatin 1 PARP1
phagocytic cup 1 TNF
Chromosome 2 FH, PARP1
centriole 1 ALB
Nucleus, nucleolus 1 PARP1
spindle pole 1 ALB
nuclear replication fork 1 PARP1
chromosome, telomeric region 1 PARP1
blood microparticle 1 ALB
site of double-strand break 2 FH, PARP1
nuclear envelope 1 PARP1
azurophil granule 1 MPO
ficolin-1-rich granule lumen 1 CAT
secretory granule lumen 1 CAT
endoplasmic reticulum lumen 1 ALB
platelet alpha granule lumen 1 ALB
azurophil granule lumen 1 MPO
mitochondrial fatty acid beta-oxidation multienzyme complex 1 HADHA
phagocytic vesicle lumen 1 MPO
protein-DNA complex 1 PARP1
death-inducing signaling complex 1 CASP3
site of DNA damage 1 PARP1
proton-transporting ATP synthase complex 1 ATP5ME
proton-transporting ATP synthase complex, coupling factor F(o) 1 ATP5ME
[Tumor necrosis factor, soluble form]: Secreted 1 TNF
catalase complex 1 CAT
[Isoform Mitochondrial]: Mitochondrion 1 FH
[Isoform Cytoplasmic]: Cytoplasm, cytosol 1 FH
acrosomal matrix 1 ACR
[Poly [ADP-ribose] polymerase 1, processed N-terminus]: Chromosome 1 PARP1
[Poly [ADP-ribose] polymerase 1, processed C-terminus]: Cytoplasm 1 PARP1
ciliary transition fiber 1 ALB
[C-domain 2]: Secreted 1 TNF
[Tumor necrosis factor, membrane form]: Membrane 1 TNF
[C-domain 1]: Secreted 1 TNF


文献列表

  • Kathrine J Vinknes, Thomas Olsen, Hasse Khiabani Zaré, Nasser E Bastani, Emma Stolt, Anja F Dahl, Roger D Cox, Helga Refsum, Kjetil Retterstøl, Anders Åsberg, Amany Elshorbagy. Cysteine-lowering treatment with mesna against obesity: Proof of concept and results from a human phase I, dose-finding study. Diabetes, obesity & metabolism. 2023 Jul; ?(?):. doi: 10.1111/dom.15210. [PMID: 37435697]
  • Abigail B Donkor, Carl W White, Heidi J Nick, Brian A Logue. Analysis of sodium 2-mercaptoethane sulfonate in rat plasma using high performance liquid chromatography tandem-mass spectrometry. Journal of chromatography. B, Analytical technologies in the biomedical and life sciences. 2022 Jan; 1189(?):123088. doi: 10.1016/j.jchromb.2021.123088. [PMID: 34974317]
  • Jonathan Fishman, Edward W Fisher. 'Chemically assisted dissection' in cholesteatoma surgery, Eustachian tube balloon dilatation post-irradiation, and coronavirus disease 2019 and the undergraduate curriculum. The Journal of laryngology and otology. 2021 08; 135(8):659. doi: 10.1017/s0022215121001870. [PMID: 34342557]
  • Hanan H Hagar, Sarah A Almubrik, Nada M Attia, Sarah N Aljasser. Mesna Alleviates Cerulein-Induced Acute Pancreatitis by Inhibiting the Inflammatory Response and Oxidative Stress in Experimental Rats. Digestive diseases and sciences. 2020 12; 65(12):3583-3591. doi: 10.1007/s10620-020-06072-1. [PMID: 32088797]
  • Sarita Rani Jaiswal, Paras Singhal, Atul Thatai, Gitali Bhagwati, Hema Malini Aiyer, Aditi Chakrabarti, Suparno Chakrabarti. Impact of extended infusional mesna prophylaxis on the incidence of BK viruria and hemorrhagic cystitis following post-transplantation cyclophosphamide and CTLA4Ig-based haploidentical transplantation. Annals of hematology. 2020 Apr; 99(4):839-845. doi: 10.1007/s00277-020-03930-w. [PMID: 32025839]
  • Nathan A Hirshman, Francis M Hughes, Huixia Jin, William T Harrison, Simon W White, Isabelle Doan, Shelby N Harper, Patrick D Leidig, J Todd Purves. Cyclophosphamide-induced cystitis results in NLRP3-mediated inflammation in the hippocampus and symptoms of depression in rats. American journal of physiology. Renal physiology. 2020 02; 318(2):F354-F362. doi: 10.1152/ajprenal.00408.2019. [PMID: 31869244]
  • Asmahan Abu-Arish, Elvis Pandžić, Dusik Kim, Hsin Wei Tseng, Paul W Wiseman, John W Hanrahan. Agonists that stimulate secretion promote the recruitment of CFTR into membrane lipid microdomains. The Journal of general physiology. 2019 06; 151(6):834-849. doi: 10.1085/jgp.201812143. [PMID: 31048413]
  • Negin Mahmoudi, Sahar Eftekharzadeh, Marzieh Golmohammadi, Reza Khorramirouz, Javad Hashemi, Zeinab Kashani, Maryam Alijani, Amir Ali Hamidieh, Abdol-Mohammad Kajbafzadeh. Alleviation of Cyclophosphamide-induced Hemorrhagic Cystitis by Dietary Pomegranate: A Comparative Experimental Study With Mesna. Journal of pediatric hematology/oncology. 2018 11; 40(8):609-615. doi: 10.1097/mph.0000000000001203. [PMID: 29734214]
  • Yoshimasa Saito, Tadashi Kumamoto, Miki Shiraiwa, Tomoko Sonoda, Ayumu Arakawa, Hironobu Hashimoto, Ikumi Tamai, Chitose Ogawa, Hiroyuki Terakado. Cyclophosphamide-induced hemorrhagic cystitis in young patients with solid tumors: A single institution study. Asia-Pacific journal of clinical oncology. 2018 Oct; 14(5):e460-e464. doi: 10.1111/ajco.13048. [PMID: 29989294]
  • C J Henry, B K Flesner, S A Bechtel, J N Bryan, D J Tate, K A Selting, J C Lattimer, M E Bryan, L Grubb, F Hausheer. Clinical Evaluation of Tavocept to Decrease Diuresis Time and Volume in Dogs with Bladder Cancer Receiving Cisplatin. Journal of veterinary internal medicine. 2018 Jan; 32(1):370-376. doi: 10.1111/jvim.14848. [PMID: 29080252]
  • Roohi Jeelani, Seyedehameneh Jahanbakhsh, Hamid-Reza Kohan-Ghadr, Mili Thakur, Sana Khan, Sarah R Aldhaheri, Zhe Yang, Peter Andreana, Robert Morris, Husam M Abu-Soud. Mesna (2-mercaptoethane sodium sulfonate) functions as a regulator of myeloperoxidase. Free radical biology & medicine. 2017 09; 110(?):54-62. doi: 10.1016/j.freeradbiomed.2017.05.019. [PMID: 28552694]
  • Benjamin J Tarrant, Caitlin Le Maitre, Lorena Romero, Ranjana Steward, Brenda M Button, Bruce R Thompson, Anne E Holland. Mucoactive agents for chronic, non-cystic fibrosis lung disease: A systematic review and meta-analysis. Respirology (Carlton, Vic.). 2017 08; 22(6):1084-1092. doi: 10.1111/resp.13047. [PMID: 28397992]
  • Lucélia Borgo. Evaluation of buffers toxicity in tobacco cells: Homopiperazine-1,4-bis (2-ethanesulfonic acid) is a suitable buffer for plant cells studies at low pH. Plant physiology and biochemistry : PPB. 2017 Jun; 115(?):119-125. doi: 10.1016/j.plaphy.2017.03.012. [PMID: 28364708]
  • Yoshimasa Saito, Tadashi Kumamoto, Yoshinori Makino, Ikumi Tamai, Chitose Ogawa, Hiroyuki Terakado. A retrospective study of treatment and prophylaxis of ifosfamide-induced hemorrhagic cystitis in pediatric and adolescent and young adult (AYA) patients with solid tumors. Japanese journal of clinical oncology. 2016 Sep; 46(9):856-61. doi: 10.1093/jjco/hyw093. [PMID: 27380806]
  • Paulina Furmaniak, Paweł Kubalczyk, Justyna Stachniuk, Rafał Głowacki. Novel MEKC method for determination of sodium 2-mercaptoethanesulfonate in human plasma with in-capillary derivatization and UV detection. Journal of chromatography. B, Analytical technologies in the biomedical and life sciences. 2016 Aug; 1027(?):88-95. doi: 10.1016/j.jchromb.2016.05.032. [PMID: 27266402]
  • Keyvan Amirshahrokhi, Ali-Reza Khalili. Gastroprotective effect of 2-mercaptoethane sulfonate against acute gastric mucosal damage induced by ethanol. International immunopharmacology. 2016 May; 34(?):183-188. doi: 10.1016/j.intimp.2016.03.006. [PMID: 26967742]
  • Q Jiang, H Huang, Q Liu, J Sun, H Zhou, Z Fan, Y Zhang, F Huang, Y Chai, D Xu, Y Lu, Q Wei, G Yu, X Li, M Dai, N Xu, D Zhou, H Zhao, K Shen, Q Mai, Y Zhou, F Meng. Continuous IV infusion of MESNA can prevent hemorrhagic cystitis in HSCT and retain MESNA concentration in urine. Bone marrow transplantation. 2015 Nov; 50(11):1490-2. doi: 10.1038/bmt.2015.197. [PMID: 26367223]
  • Myrtle Davis, Deborah I Bunin, Steven J Samuelsson, Kenneth P Altera, Robert J Kinders, Scott M Lawrence, Jiuping Ji, Matthew M Ames, Sarah A Buhrow, Chad Walden, Joel M Reid, Linda L Rausch, Toufan Parman. Characterization of Batracylin-induced Renal and Bladder Toxicity in Rats. Toxicologic pathology. 2015 Jun; 43(4):519-29. doi: 10.1177/0192623314548766. [PMID: 25274659]
  • Murray J Cutler, Thomas J Velenosi, Ankur Bodalia, Andrew A House, Bradley L Urquhart, David J Freeman. Enzymatic and non-enzymatic mechanisms of dimesna metabolism. Amino acids. 2015 Mar; 47(3):511-23. doi: 10.1007/s00726-014-1882-0. [PMID: 25488427]
  • John Hayslip, Emily V Dressler, Heidi Weiss, Tammy J Taylor, Mara Chambers, Teresa Noel, Sumitra Miriyala, Jeriel T R Keeney, Xiaojia Ren, Rukhsana Sultana, Mary Vore, D Allan Butterfield, Daret St Clair, Jeffrey A Moscow. Plasma TNF-α and Soluble TNF Receptor Levels after Doxorubicin with or without Co-Administration of Mesna-A Randomized, Cross-Over Clinical Study. PloS one. 2015; 10(4):e0124988. doi: 10.1371/journal.pone.0124988. [PMID: 25909710]
  • Tatoba R Waghmode, Md Mozammel Haque, Sang Yoon Kim, Pil Joo Kim. Effective Suppression of Methane Emission by 2-Bromoethanesulfonate during Rice Cultivation. PloS one. 2015; 10(11):e0142569. doi: 10.1371/journal.pone.0142569. [PMID: 26562416]
  • Risikat Ajibola Adigun, Bice Martincigh, Vincent O Nyamori, Bernard Omondi, Collen Masimirembwa, Reuben H Simoyi. Kinetics and mechanistic investigation into the possible activation of imidazolium trans-[tetrachloridodimethylsulfoxideimidazoleruthenate(III)], NAMI-A, by 2-mercaptoethane sulfonate. Dalton transactions (Cambridge, England : 2003). 2014 Sep; 43(34):12943-51. doi: 10.1039/c4dt01643b. [PMID: 25026023]
  • Danila Di Giuseppe, Raffaella Priora, Lucia Coppo, Monica Ulivelli, Sabina Bartalini, Domenico Summa, Antonios Margaritis, Simona Frosali, Paolo Di Simplicio. The control of hyperhomocysteinemia through thiol exchange mechanisms by mesna. Amino acids. 2014 Feb; 46(2):429-39. doi: 10.1007/s00726-013-1636-4. [PMID: 24337902]
  • Teigo Asai, Dan Luo, Kouwa Yamashita, Yoshiteru Oshima. Structures and biomimetic synthesis of novel α-pyrone polyketides of an endophytic Penicillium sp. in Catharanthus roseus. Organic letters. 2013 Mar; 15(5):1020-3. doi: 10.1021/ol303506t. [PMID: 23405967]
  • Lisa Truong, Susan C Tilton, Tatiana Zaikova, Erik Richman, Katrina M Waters, James E Hutchison, Robert L Tanguay. Surface functionalities of gold nanoparticles impact embryonic gene expression responses. Nanotoxicology. 2013 Mar; 7(2):192-201. doi: 10.3109/17435390.2011.648225. [PMID: 22263968]
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  • Dana Baram-Pinto, Sourabh Shukla, Michal Richman, Aharon Gedanken, Shai Rahimipour, Ronit Sarid. Surface-modified protein nanospheres as potential antiviral agents. Chemical communications (Cambridge, England). 2012 Aug; 48(67):8359-61. doi: 10.1039/c2cc33448h. [PMID: 22798998]
  • Anna Dietrich-Muszalska, Joanna Malinowska, Beata Olas, Rafal Głowacki, Edward Bald, Barbara Wachowicz, Jolanta Rabe-Jabłońska. The oxidative stress may be induced by the elevated homocysteine in schizophrenic patients. Neurochemical research. 2012 May; 37(5):1057-62. doi: 10.1007/s11064-012-0707-3. [PMID: 22270909]
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  • Zdeněk Svagera, Dagmar Hanzlíková, Petr Simek, Petr Hušek. Study of disulfide reduction and alkyl chloroformate derivatization of plasma sulfur amino acids using gas chromatography-mass spectrometry. Analytical and bioanalytical chemistry. 2012 Mar; 402(9):2953-63. doi: 10.1007/s00216-012-5727-y. [PMID: 22349320]
  • Francisco Yuri Bulcão Macedo, Lívia Talita Cajaseiras Mourão, Helano Carioca Freitas, Roberto C P Lima, Deysi Viviana Tenazoa Wong, Reinaldo Barreto Oriá, Mariana L Vale, Gerly Anne Casto Brito, Fernando Q Cunha, Ronaldo A Ribeiro. Interleukin-4 modulates the inflammatory response in ifosfamide-induced hemorrhagic cystitis. Inflammation. 2012 Feb; 35(1):297-307. doi: 10.1007/s10753-011-9319-3. [PMID: 21468627]
  • William Jacot, Jean-Louis Pujol, Mohammad Chakra, Olivier Molinier, Marie-Cécile Bozonnat, Radj Gervais, Xavier Quantin. Epirubicin and ifosfamide in relapsed or refractory small cell lung cancer patients. Lung cancer (Amsterdam, Netherlands). 2012 Feb; 75(2):213-6. doi: 10.1016/j.lungcan.2011.07.012. [PMID: 21831476]
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  • Aparna Gangopadhyay, Partha Nath, Mofizur Rahman Khan, Jaydip Biswas. Bladder Carcinoma after ABVD Chemotherapy for Hodgkin's Lymphoma: A Case Report. Case reports in oncology. 2012 Jan; 5(1):148-53. doi: 10.1159/000338040. [PMID: 22666204]
  • Yousra Akasbi, Samia Arifi, Karim Lahlaidi, Tarik Namad, Nawfel Mellas, Mohammed Jamal El Fassi, My Hassan Farih, Afaf Amarti, Omar El Mesbahi. Renal metastases of a femur osteosarcoma: a case report and a review of the literature. Case reports in urology. 2012; 2012(?):259193. doi: 10.1155/2012/259193. [PMID: 22606633]
  • Franz-Georg Hanisch, Carol L Kinlough, Simon Staubach, Rebecca P Hughey. MUC1 membrane trafficking: protocols for assessing biosynthetic delivery, endocytosis, recycling, and release through exosomes. Methods in molecular biology (Clifton, N.J.). 2012; 842(?):123-40. doi: 10.1007/978-1-61779-513-8_7. [PMID: 22259133]
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