1 |
GORDEEVA O. Cancer-testis antigens: unique cancer stem cell biomarkers and targets for cancer therapy[J]. Semin Cancer Biol, 2018, 53: 75-89.
|
2 |
FAN C M, QU H K, WANG X, et al. Cancer/testis antigens: from serology to mRNA cancer vaccine[J]. Semin Cancer Biol, 2021, 76: 218-231.
|
3 |
ZHANG G H, JIANG C, YANG Y S, et al. Deficiency of cancer/testis antigen gene CT55 causes male infertility in humans and mice[J]. Cell Death Differ, 2023, 30(2): 500-514.
|
4 |
LIU W S, LU C, MISTRY B V. Subcellular localization of the mouse PRAMEL1 and PRAMEX1 reveals multifaceted roles in the nucleus and cytoplasm of germ cells during spermatogenesis[J]. Cell Biosci, 2021, 11(1): 102.
|
5 |
SCHÄFER P, PARASCHIAKOS T, WINDHORST S. Oncogenic activity and cellular functionality of melanoma associated antigen A3[J]. Biochem Pharmacol, 2021, 192: 114700.
|
6 |
NIN D S, DENG L W. Biology of cancer-testis antigens and their therapeutic implications in cancer[J]. Cells, 2023, 12(6): 926.
|
7 |
YANG P, MENG M, ZHOU Q S. Oncogenic cancer/testis antigens are a hallmarker of cancer and a sensible target for cancer immunotherapy[J]. Biochim Biophys Acta Rev Cancer, 2021, 1876(1): 188558.
|
8 |
ZHANG Y J, YU X H, LIU Q P, et al. SAGE1: a potential target antigen for lung cancer T-cell immunotherapy[J]. Mol Cancer Ther, 2021, 20(11): 2302-2313.
|
9 |
YANG Y, QU Y J, LI Z P, et al. Identification of novel characteristics in TP53-mutant hepatocellular carcinoma using bioinformatics[J]. Front Genet, 2022, 13: 874805.
|
10 |
ISHIHARA M, KAGEYAMA S, MIYAHARA Y, et al. MAGE-A4, NY-ESO-1 and SAGE mRNA expression rates and co-expression relationships in solid tumours[J]. BMC Cancer, 2020, 20(1): 606.
|
11 |
PACKER J S, ZHU Q, HUYNH C, et al. A lineage-resolved molecular atlas of C. elegans embryogenesis at single-cell resolution[J]. Science, 2019, 365(6459): eaax1971.
|
12 |
ALJOHANI M D, MOURIDI S E, PRIYADARSHINI M, et al. Engineering rules that minimize germline silencing of transgenes in simple extrachromosomal arrays in C. elegans[J]. Nat Commun, 2020, 11(1): 6300.
|
13 |
KIMBLE J, NÜSSLEIN-VOLHARD C. The great small organisms of developmental genetics: Caenorhabditis elegans and Drosophila melanogaster[J]. Dev Biol, 2022, 485: 93-122.
|
14 |
AZUMA Y, OKADA H, ONAMI S. Systematic analysis of cell morphodynamics in C. elegans early embryogenesis[J]. Front Bioinform, 2023, 3: 1082531.
|
15 |
YAN L Y, YANG M Y, GUO H S, et al. Single-cell RNA-Seq profiling of human preimplantation embryos and embryonic stem cells[J]. Nat Struct Mol Biol, 2013, 20(9): 1131-1139.
|
16 |
MAO S S, QI Y C, ZHU H H, et al. A tet/Q hybrid system for robust and versatile control of transgene expression in C.elegans[J]. iScience, 2019, 11: 224-237.
|
17 |
VAN DER VAART A, GODFREY M, PORTEGIJS V, et al. Dose-dependent functions of SWI/SNF BAF in permitting and inhibiting cell proliferation in vivo[J]. Sci Adv, 2020, 6(21): 3823.
|
18 |
COHEN I, BAR C, LIU H Q, et al. Polycomb complexes redundantly maintain epidermal stem cell identity during development[J]. Genes Dev, 2021, 35(5/6): 354-366.
|
19 |
ROSS J M, ZARKOWER D. Polycomb group regulation of Hox gene expression in C. elegans[J]. Dev Cell, 2003, 4(6): 891-901.
|
20 |
ERDELYI P, WANG X, SULESKI M, et al. A network of chromatin factors is regulating the transition to postembryonic development in Caenorhabditis elegans[J]. G3, 2017, 7(2): 343-353.
|
21 |
SAVAGE-DUNN C, PADGETT R W. The TGF-β family in Caenorhabditis elegans[J]. Cold Spring Harb Perspect Biol, 2017, 9(6): a022178.
|
22 |
NAYAK S, SANTIAGO F E, JIN H, et al. The Caenorhabditis elegans Skp1-related gene family: diverse functions in cell proliferation, morphogenesis, and meiosis[J]. Curr Biol, 2002, 12(4): 277-287.
|
23 |
BRASHEAR W A, BREDEMEYER K R, MURPHY W J. Genomic architecture constrained placental mammal X Chromosome evolution[J]. Genome Res, 2021, 31(8): 1353-1365.
|
24 |
VOCKEL M, RIERA-ESCAMILLA A, TÜTTELMANN F, et al. The X chromosome and male infertility[J]. Hum Genet, 2021, 140(1): 203-215.
|
25 |
JIA Y, CHENG Z X, BHARATH S R, et al. Crystal structure of the INTS3/INTS6 complex reveals the functional importance of INTS3 dimerization in DSB repair[J]. Cell Discov, 2021, 7(1): 66.
|
26 |
ZHENG H, QI Y L, HU S B, et al. Identification of Integrator-PP2A complex (INTAC), an RNA polymerase Ⅱ phosphatase[J]. Science, 2020, 370(6520): eabb5872.
|
27 |
LAI F, GARDINI A, ZHANG A D, et al. Integrator mediates the biogenesis of enhancer RNAs[J]. Nature, 2015, 525(7569): 399-403.
|
28 |
BAILLAT D, HAKIMI M A, NÄÄR A M, et al. Integrator, a multiprotein mediator of small nuclear RNA processing, associates with the C-terminal repeat of RNA polymerase Ⅱ[J]. Cell, 2005, 123(2): 265-276.
|