[1] THORAT R, MANTRAVADI K, RAO D G. Role of microfluidics sperm sorting in optimizing outcomes of an iui cycle[J]. Fertil Steril, 2024, 122(4): e198. [2] 张博洋, 任冠宇, 刘智勇. 微流体技术在精子优选方面的应用进展[J]. 中国男科学杂志, 2024, 38(4): 96-101. [3] SHEIBAK N, AMJADI F, SHAMLOO A, et al. Microfluidic sperm sorting selects a subpopulation of high-quality sperm with a higher potential for fertilization[J]. Hum Reprod, 2024, 39(5): 902-911. [4] CHARLES D K, LANGE M J, ORTIZ N M, et al. A narrative review of sperm selection technology for assisted reproduction techniques[J]. Transl Androl Urol, 2024, 13(9): 2119-2133. [5] ZAHA I, NAGHI P, STEFAN L, et al. Comparative study of sperm selection techniques for pregnancy rates in an unselected IVF-ICSI population[J]. J Pers Med, 2023, 13(4): 619. [6] KOCUR O M, XIE P, CHEUNG S, et al. Can a sperm selection technique improve embryo ploidy-[J]. Andrology, 2023, 11(8): 1605-1612. [7] 梁晓燕. 辅助生殖临床技术实践与提高[M]. 北京: 人民卫生出版社, 2018. [8] 董波, 姚晓飞, 方东, 等. 精子-固相透明质酸分离法选择精子的整体质量分析[J]. 实用中西医结合临床, 2020, 20(15): 107-109. [9] BECK-FRUCHTER R, SHALEV E, WEISS A. Clinical benefit using sperm hyaluronic acid binding technique in ICSI cycles: a systematic review and meta-analysis[J]. Reprod Biomed Online, 2016, 32(3): 286-298. [10] PARMEGIANI L. Hyaluronan-selected sperm should not be considered an add-on[J]. Lancet, 2019, 394(10206): 1319-1320. [11] 曲晓伟, 夏松, 冯科, 等. 精子-透明质酸结合试验在IVF-ET中的应用价值分析[J]. 中华男科学杂志, 2020, 26(9): 803-806. [12] MARTIN C, WOODLAND E. Sperm selection technology in ART[J]. Semin Reprod Med, 2021, 39(5/6): 200-206. [13] MOKÁNSZKI A, MOLNÁR Z, UJFALUSI A, et al. Correlation study between sperm concentration, hyaluronic acid-binding capacity and sperm aneuploidy in Hungarian patients[J]. Reprod Biomed Online, 2012, 25(6): 620-626. [14] 周文, 李思楠, 周欢群, 等. 不育男性精子-透明质酸结合率与精液参数的相关性分析[J]. 中国性科学, 2020, 29(3): 4-7. [15] HASCALL V C. The journey of hyaluronan research in the Journal of biological chemistry[J]. J Biol Chem, 2019, 294(5): 1690-1696. [16] JAHANGIRI A R, ZIARATI N, DADKHAH E, et al. Microfluidics: The future of sperm selection in assisted reproduction[J]. Andrology, 2024, 12(6): 1236-1252. [17] VIGOLO V, GAUTIER C, FALOMO M E, et al. Selection of frozen-thawed stallion Semen by microfluidic technology[J]. Reprod Domest Anim, 2023, 58(3): 443-449. [18] SERRANO-ALBAL M, AQUILINA M C, KIAZIM L G, et al. Effect of two different sperm selection methods on boar sperm parameters and in vitro fertilisation outcomes[J]. Animals (Basel), 2024, 14(17): 2544. [19] VASILESCU S A, GOSS D M, GURNER K H, et al. A biomimetic sperm selection device for routine sperm selection[J]. Reprod Biomed Online, 2025, 50(2): 104433. [20] NOSRATI R, GRAHAM P J, ZHANG B, et al. Microfluidics for sperm analysis and selection[J]. Nat Rev Urol, 2017, 14(12): 707-730. [21] HEYDARI A, ZABETIAN TARGHI M, HALVAEI I, et al. A novel microfluidic device with parallel channels for sperm separation using spermatozoa intrinsic behaviors[J]. Sci Rep, 2023, 13(1): 1185. [22] SCHARDEIN J N, FENDERESKI K, HOTALING J M. Evolution of the basic Semen analysis and processing sperm[J]. Curr Opin Urol, 2023, 33(1): 16-23. [23] BHAT G R, LONE F A, DALAL J. Microfluidics-a novel technique for high-quality sperm selection for greater ART outcomes[J]. FASEB Bioadv, 2024, 6(10): 406-423. [24] AMANO K, OIGAWA S, ICHIZAWA K, et al. Swim-up method is superior to density gradient centrifugation for preserving sperm DNA integrity during sperm processing[J]. Reprod Med Biol, 2024, 23(1): e12562. [25] HUANG C H, CHEN C H, HUANG T K, et al. Design of a gradient-rheotaxis microfluidic chip for sorting of high-quality sperm with progressive motility[J]. iScience, 2023, 26(8): 107356. [26] ZHAO C, SUN L M, ZHAO P. Effects of sperm processing techniques on IVF pregnancy rates: a mini-review[J]. Ther Adv Reprod Health, 2023, 17: 26334941231188656. [27] GLORIA A, CUNTO M, ZAMBELLI D, et al. Cushioned and high-speed centrifugation improve sperm recovery rate but affect the quality of fresh and cryopreserved feline spermatozoa[J]. Theriogenology, 2024, 215: 195-204. [28] FAN J, CHEN K X, CHENG Y J, et al. Selection of functional sperm by using hyaluronic acid modified magnetic microbeads and an electromagnetic manipulation system[J]. Anal Methods, 2024, 16(29): 5060-5068. [29] ANDREI C R, POSASTIUC F P, CONSTANTIN N T, et al. New insights into Semen separation techniques in buffaloes[J]. Front Vet Sci, 2024, 10: 1347482. [30] GILL M E, QUAAS A M. Looking with new eyes: advanced microscopy and artificial intelligence in reproductive medicine[J]. J Assist Reprod Genet, 2023, 40(2): 235-239. [31] GOSS D M, VASILESCU S A, VASILESCU P A, et al. Evaluation of an artificial intelligence-facilitated sperm detection tool in azoospermic samples for use in ICSI[J]. Reprod Biomed Online, 2024, 49(1): 103910. [32] QADERI K, SHARIFIPOUR F, DABIR M, et al. Artificial intelligence (AI) approaches to male infertility in IVF: a mapping review[J]. Eur J Med Res, 2025, 30(1): 246. [33] YANG H, MA M M, CHEN X F, et al. Multidimensional morphological analysis of live sperm based on multiple-target tracking[J]. Comput Struct Biotechnol J, 2024, 24: 176-184. [34] IANNONE A, CARFì A, MASTROGIOVANNI F, et al. On the role of artificial intelligence in analysing oocytes during in vitro fertilisation procedures[J]. Artif Intell Med, 2024, 157: 102997. [35] ZHANG Z R, DAI C S, SHAN G Q, et al. Quantitative selection of single human sperm with high DNA integrity for intracytoplasmic sperm injection[J]. Fertil Steril, 2021, 116(5): 1308-1318. [36] NASSIR M, LEVI M, DARDIKMAN-YOFFE G, et al. Prediction of sperm progression in three dimensions using rapid optical imaging and dynamic mechanical modeling[J]. Cells, 2022, 11(8): 1319. [37] RIORDON J, TARLAN F, YOU J B, et al. Two-dimensional planar swimming selects for high DNA integrity sperm[J]. Lab Chip, 2019, 19(13): 2161-2167. [38] XIAO S, RIORDON J, SIMCHI M, et al. FertDish: microfluidic sperm selection-in-a-dish for intracytoplasmic sperm injection[J]. Lab Chip, 2021, 21(4): 775-783. [39] JIANG V S, KARTIK D, THIRUMALARAJU P, et al. Advancements in the future of automating micromanipulation techniques in the IVF laboratory using deep convolutional neural networks[J]. J Assist Reprod Genet, 2023, 40(2): 251-257. [40] NASHED J Y, LIBLIK K, DERGHAM A, et al. Artificial intelligence in andrology: a new frontier in male infertility diagnosis and treatment[J]. Curr Urol Rep, 2025, 26(1): 29. [41] NG L, KOCUR O M, XIE P, et al. Timing of testicular biopsy in relation to oocyte retrieval and the outcomes of intracytoplasmic sperm injection[J]. J Urol, 2024, 211(5): 678-686. [42] SI K Y, HUANG B, JIN L. Application of artificial intelligence in gametes and embryos selection[J]. Hum Fertil (Camb), 2023, 26(4): 757-777. [43] HEW Y, KUTUK D, DUZCU T, et al. Artificial intelligence in IVF laboratories: elevating outcomes through precision and efficiency[J]. Biology (Basel), 2024, 13(12): 988. |