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201por Temple, Max J., Cuskin, Fiona, Baslé, Arnaud, Hickey, Niall, Speciale, Gaetano, Williams, Spencer J., Gilbert, Harry J., Lowe, Elisabeth C.“…The non-catalytic proteins encoded by PUL(1,6-β-glucan) target 1,6-β-glucans and comprise a surface glycan-binding protein and a SusD homologue that delivers glycans to the outer membrane transporter. …”
Publicado 2017
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202por Gurung, Shanti, Williams, Sarah, Deane, James A., Werkmeister, Jerome A., Gargett, Caroline E.“…Human endometrium harbors a small population of perivascular, clonogenic MSCs (eMSCs) identified by the SUSD2 marker. As for other MSCs, eMSCs require extensive in vitro expansion to generate clinically relevant numbers of cells, resulting in spontaneous differentiation, replicative senescence and cell death, decreasing therapeutic potency. …”
Publicado 2018
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203por Lebedev, Timofey D., Vagapova, Elmira R., Popenko, Vladimir I., Leonova, Olga G., Spirin, Pavel V., Prassolov, Vladimir S.“…We identified several gene sets both unique and common for pediatric AML and NB, and this expression is associated with KIT or TrkA levels. NMU, DUSP4, RET, SUSD5, NOS1, and GABRA5 genes are differentially expressed in NBs with high KIT expression and are associated with poor survival in NB. …”
Publicado 2019
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204“…Endometrial stem/progenitor cells have been proved to exist in periodically regenerated female endometrium and can be divided into three categories: endometrial epithelial stem/progenitor cells, CD140b(+)CD146(+) or SUSD2(+) endometrial mesenchymal stem cells (eMSCs), and side population cells (SPs). …”
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205“…Perivascular endometrial mesenchymal stem cells (eMSCs) can be identified by co-expression of PDGFRβ and CD146 or by a single marker, SUSD2. This review will detail the known endometrial stem/progenitor markers; their identity, location and known interactions and hierarchy across the menstrual cycle, in particular post-menstrual repair and estrogen-driven regeneration, as well as their possible contributions to menstruation-related disorders such as endometriosis and regeneration-related disorder Asherman's syndrome. …”
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206por Li, Guangzhen, Luo, Jing, Wang, Fuwen, Xu, Donghui, Ahmed, Zulfiqar, Chen, Shengmei, Li, Ruizhe, Ma, Zhijie“…Positive selection signals were detected in candidate genes associated with disease resistance (CDK2AP2, PLEC, and CYB5B), heat stress (NFAT5, HSF1, and SLC25A48), pigmentation (MCAM, RNF26, and BOP1), vision (C1QTNF5, MFRP, and TAX1BP3), milk quality (OPLAH and GRINA), neurodevelopment (SUSD4, INSYN1, and PPP1CA), and meat quality (ZRANB1), using the integrated PI, composite likelihood ratio (CLR), and F (ST) methods. …”
Publicado 2023
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207por Paolucci, P., Hadjiiska, R., Litov, L., Pavlov, B., Petkov, P., Dimitrov, A., Beernaert, K., Cimmino, A., Costantini, S., Guillaume, G., Lellouch, J., Marinov, A., Ocampo, A., Strobbe, N., Thyssen, F., Tytgat, M., Verwilligen, P., Yazgan, E., Zaganidis, N., Aleksandrov, A., Genchev, V., Iaydjiev, P., Rodozov, M., Shopova, M., Sultanov, G., Ban, Y., Cai, J., Xue, Z., Ge, Y., Li, Q., Qian, S., Avila, C., Chaparro, L.F., Gomez, J.P., Gomez Moreno, B., Osorio Oliveros, A.F., Sanabria, J.C., Assran, Y., Sharma, A., Abbrescia, M., Colaleo, A., Pugliese, G., Loddo, F., Calabria, C., Maggi, M., Benussi, L., Bianco, S., Colafranceschi, S., Piccolo, D., Carrillo, C., Iorio, O., Buontempo, S., Vitulo, P., Berzano, U., Gabusi, M., Kang, Minho, Lee, Kyong Sei, Park, Sung Keun, Shin, Seungsu, Kim, Min Suk, Seo, Hyun Kwan, Goh, Junghwan, Choi, Young-IlEnlace del recurso
Publicado 2012
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208por Katzeff, Jared S., Bright, Fiona, Lo, Kitty, Kril, Jillian J., Connolly, Angela, Crossett, Ben, Ittner, Lars M., Kassiou, Michael, Loy, Clement T., Hodges, John R., Piguet, Olivier, Kiernan, Matthew C., Halliday, Glenda M., Kim, Woojin Scott“…Twenty three proteins were significantly altered in FTD compared to controls (increased—APOL1, C3, CTSH, EIF5A, MYH2, S100A8, SUSD5, WDR1; decreased—C1S, C7, CILP2, COMP, CRTAC1, EFEMP1, FBLN1, GSN, HSPG2, IGHV1, ITIH2, PROS1, SHBG, UMOD, VASN) and 14 proteins were significantly altered in ALS compared to controls (increased—APOL1, CKM, CTSH, IGHG1, IGKC, MYH2; decreased—C7, COMP, CRTAC1, EFEMP1, FBLN1, GSN, HSPG2, SHBG). …”
Publicado 2020
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209por Zhang, Xiaoxiao, Su, Yue, Wu, Xue, Xiao, Rourou, Wu, Yifan, Yang, Bin, Wang, Zhen, Guo, Lili, Kang, Xiaoyan, Wang, Changyu“…Moreover, we obtained 16 co-expressed core genes, such as FOXQ1, MMP7, AQP5, RBM47, ETV4, NPW, SUSD2, SFRP2, IDO1, ANPEP, CXCR4, SCNN1A, SPP1 and IFI27 (upregulated) and SERPINE1, DUSP1, CD40, and IL6 (downregulated). …”
Publicado 2020
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210por Wu, Haiyang, Ioannou, Eleni, Henrissat, Bernard, Montanier, Cédric Y., Bozonnet, Sophie, O’Donohue, Michael J., Dumon, Claire“…The genes upstream of the genes encoding Pm25 are susC-susD-unk, suggesting Pm25 is a Xyn10C-like enzyme belonging to a polysaccharide utilization locus. …”
Publicado 2021
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211por Montesinos-Rongen, Manuel, Brunn, Anna, Sanchez-Ruiz, Monica, Küppers, Ralf, Siebert, Reiner, Deckert, Martina“…Furthermore, the targeting of oncogenes by aberrant SHM (e.g., PIM1, PAX5, RHOH, MYC, BTG2, KLHL14, SUSD2), translocations of the IG and BCL6 genes, and genomic instability (e.g., gains of 18q21; losses of 9p21, 8q12, 6q21) occur in these cells in the course of their malignant transformation. …”
Publicado 2021
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212por Larsbrink, Johan, Zhu, Yongtao, Kharade, Sampada S., Kwiatkowski, Kurt J., Eijsink, Vincent G. H., Koropatkin, Nicole M., McBride, Mark J., Pope, Phillip B.“…Ligand-binding and structural studies revealed functional differences between the two SusD-like proteins that enhance scavenging of chitin from the environment. …”
Publicado 2016
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213por Mukherjee, Shayanti, Darzi, Saeedeh, Paul, Kallyanashis, Cousins, Fiona L., Werkmeister, Jerome A., Gargett, Caroline E.“…This study aimed to determine the key molecular players enabling eMSC-based foreign body response modulation. METHODS: SUSD2(+) eMSC were purified from single cell suspensions obtained from endometrial biopsies from cycling women by magnetic bead sorting. …”
Publicado 2020
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214por Willis, Scooter, Sun, Yuliang, Abramovitz, Mark, Fei, Teng, Young, Brandon, Lin, Xiaoqian, Ni, Min, Achua, Justin, Regan, Meredith M., Gray, Kathryn P., Gray, Robert, Wang, Victoria, Long, Bradley, Kammler, Roswitha, Sparano, Joseph A., Williams, Casey, Goldstein, Lori J., Salgado, Roberto, Loi, Sherene, Pruneri, Giancarlo, Viale, Giuseppe, Brown, Myles, Leyland-Jones, Brian“…Prognostic significance of faciogenital dysplasia 3 (FGD3), SUSD3, and other single-gene proliferation markers was evaluated in breast cancer and The Cancer Genome Atlas (TCGA) cohorts. …”
Publicado 2017
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215por Glavan, Daniela, Gheorman, Victor, Gresita, Andrei, Hermann, Dirk M., Udristoiu, Ion, Popa-Wagner, Aurel“…Most of the identified gene expression changes were related to region-specific dysregulated manifestation of genetic and epigenetic mechanisms underlying neurodevelopmental disorders (SNORD114-10, SUSd1), motivation, addiction and motor disorders (CHRNA6), long-term depression (RAB3B), stress response, major depression and schizophrenia (GFAP), signal transduction at the neurovascular unit (NEXN) and inhibitory neurotransmission in spatial learning, neural plasticity (CALB2; CLIC6, ENPP1). …”
Publicado 2021
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216por Shi, Xiaolei, Pang, Qingyang, Nian, Xinwen, Jiang, Aimin, Shi, Haoqing, Liu, Wenqiang, Gan, Xinxin, Gao, Yisha, Yang, Yiren, Ji, Jin, Tan, Xiaojie, Xiao, Chengwu, Zhang, Wei“…A prognostic classifier consisting of six DEGs (DEPTOR, DPEP1, NAT8, PLOD2, SLC7A5, SUSD2) performed satisfactorily in predicting survival of ccRCC patients (HR = 4.41, P < 0.001), which was further validated in an independent cohort of 40 cases (HR = 5.52, P = 0.026). …”
Publicado 2023
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217por Despres, Jordane, Forano, Evelyne, Lepercq, Pascale, Comtet-Marre, Sophie, Jubelin, Grégory, Yeoman, Carl J., Miller, Margret E. Berg, Fields, Christopher J., Terrapon, Nicolas, Le Bourvellec, Carine, Renard, Catherine M.G.C., Henrissat, Bernard, White, Bryan A., Mosoni, Pascale“…The insertion blocked transcription of the susC-like and the two downstream genes (susD-like/FnIII). The mutant showed strong growth reduction, thus confirming that PUL 49 plays a major role in pectin degradation. …”
Publicado 2016
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218por Correia, Viviana G., Trovão, Filipa, Pinheiro, Benedita A., Brás, Joana L. A., Silva, Lisete M., Nunes, Cláudia, Coimbra, Manuel A., Liu, Yan, Feizi, Ten, Fontes, Carlos M. G. A., Mulloy, Barbara, Chai, Wengang, Carvalho, Ana Luísa, Palma, Angelina S.“…The BoSGBP(MLG)-A protein encoded by the BACOVA_2743 gene is a SusD-like protein that plays a key role in the PUL’s specificity and functionality. …”
Publicado 2021
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219por Thintip, Jitmat, Singchat, Worapong, Ahmad, Syed Farhan, Ariyaraphong, Nattakan, Muangmai, Narongrit, Chamchumroon, Wiyada, Pitiwong, Klinsak, Suksavate, Warong, Duangjai, Sutee, Duengkae, Prateep, Srikulnath, KornsornEnlace del recurso
Publicado 2021
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220por Duengkae, Prateep, Ariyaraphong, Nattakan, Tipkantha, Wanlaya, Jairak, Waleemas, Baicharoen, Sudarath, Nguyen, Dung Ho My, Korboon, Onjira, Singchat, Worapong, Panthum, Thitipong, Ahmad, Syed Farhan, Kaewkhunjob, Erngsiri, Chaisonkhram, Chavin, Maikaew, Umaporn, Muangmai, Narongrit, Ieamsaard, Gittiyaporn, Sripiboon, Supaphen, Paansri, Paanwaris, Suksavate, Warong, Chaiyes, Aingorn, Winitpornsawan, Supagit, Prayoon, Umphornpimon, Sornsa, Thiti, Chokcharoen, Ratchanee, Buanual, Annop, Siriaroonrat, Boripat, Utara, Yongchai, Srikulnath, KornsornEnlace del recurso
Publicado 2022
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