Chemical Research in Chinese Universities ›› 2026, Vol. 42 ›› Issue (4): 1320-1330.doi: 10.1007/s40242-026-6143-8
• Research Articles • Previous Articles Next Articles
ZHAO Jialiang1, HU Caiwei1, FENG Jie2, ZHOU Bokai3, WU Guangyao1, JIN Mingshi3, BAI Yu1
Received:2026-06-15
Revised:2026-07-10
Online:2026-08-01
Published:2026-07-28
Contact:
BAI Yu,E-mail:yu.bai@pku.edu.cn
E-mail:yu.bai@pku.edu.cn
Supported by:ZHAO Jialiang, HU Caiwei, FENG Jie, ZHOU Bokai, WU Guangyao, JIN Mingshi, BAI Yu. Serum Small Extracellular Vesicle Proteomic Analysis Based on Functionalized Nanobowl Enrichment for Screening Candidate Biomarkers of Breast Cancer[J]. Chemical Research in Chinese Universities, 2026, 42(4): 1320-1330.
| [1] GBD 2023 Breast Cancer Collaborators, The Lancet Oncology, 2026, 27, 302. [2] Kim J., Harper A., McCormack V., Sung H., Houssami N., Morgan E., Mutebi M., Garvey G., Soerjomataram I., Fidler-Benaoudia M. M., Nature Medicine, 2025, 31, 1154. [3] García-Torralba E., Loi S., Salgado R., Galluzzi L., Buqué A., Nature Reviews Immunology, 2026, doi: 10.1038/s41577-026- 01307-0. [4] Foulkes W. D., Smith I. E., Reis-Filho J. S., N. Engl. J. Med., 2010, 363, 1938. [5] Dent R., Trudeau M., Pritchard K. I., Hanna W. M., Kahn H. K., Sawka C. A., Lickley L. A., Rawlinson E., Sun P., Narod S. A., Clin. Cancer Res., 2007, 13, 4429. [6] Tabár L., Gad A., Holmberg L. H., Ljungquist U., Fagerberg C. J. G., Baldetorp L., Gröntoft O., Lundström B., Månson J. C., Eklund G., Day N. E., Pettersson F., The Lancet, 1985, 325, 829. [7] Committee E. G., Loibl S., André F., Bachelot T., Barrios C. H., Bergh J., Burstein H. J., Cardoso M. J., Carey L. A., Dawood S., Del Mastro L., Denkert C., Fallenberg E. M., Francis P. A., GamalEldin H., Gelmon K., Geyer C. E., Gnant M., Guarneri V., Gupta S., Kim S. B., Krug D., Martin M., Meattini I., Morrow M., Janni W., Paluch-Shimon S., Partridge A., Poortmans P., Pusztai L., Regan M. M., Sparano J., Spanic T., Swain S., Tjulandin S., Toi M., Trapani D., Tutt A., Xu B., Curigliano G., Harbeck N., Annals of Oncology, 2024, 35, 159. [8] Allison K. H., Hammond M. E. H., Dowsett M., Mckernin S. E., Carey L. A., Fitzgibbons P. L., Hayes D. F., Lakhani S. R., ChavezMacgregor M., Perlmutter J., Perou C. M., Regan M. M., Rimm D. L., Symmans W. F., Torlakovic E. E., Varella L., Viale G., Weisberg T. F., McShane L. M., Wolff A. C., Journal of Clinical Oncology, 2020, 38, 1346. [9] Wolff A. C., Somerfield M. R., Dowsett M., Hammond M. E. H., Hayes D. F., Mcshane L. M., Saphner T. J., Spears P. A., Allison K. H., J. Clin. Oncol., 2023, 41, 3867. [10] Ma L., Guo H., Zhao Y., Liu Z., Wang C., Bu J., Sun T., Wei J., Signal Transduction and Targeted Therapy, 2024, 9, 336. [11] Vaidyanathan R., Soon R. H., Zhang P., Jiang K., Lim C. T., Lab Chip, 2018, 19, 11. [12] Witwer K. W., Théry C., J. Extracell Vesicles, 2019, 8, 1648167. [13] van Niel G., D'angelo G., Raposo G., Nature Reviews Molecular Cell Biology, 2018, 19, 213. [14] Kalluri R., Lebleu V. S., Science, 2020, 367, eaau6977. [15] Hoshino A., Costa-Silva B., Shen T.-L., Rodrigues G., Hashimoto A., Tesic Mark M., Molina H., Kohsaka S., Di Giannatale A., Ceder S., Singh S., Williams C., Soplop N., Uryu K., Pharmer L., King T., Bojmar L., Davies A. E., Ararso Y., Zhang T., Zhang H., Hernandez J., Weiss J. M., Dumont-Cole V. D., Kramer K., Wexler L. H., Narendran A., Schwartz G. K., Healey J. H., Sandstrom P., Jørgen Labori K., Kure E. H., Grandgenett P. M., Hollingsworth M. A., De Sousa M., Kaur S., Jain M., Mallya K., Batra S. K., Jarnagin W. R., Brady M. S., Fodstad O., Muller V., Pantel K., Minn A. J., Bissell M. J., Garcia B. A., Kang Y., Rajasekhar V. K., Ghajar C. M., Matei I., Peinado H., Bromberg J., Lyden D., Nature, 2015, 527, 329. [16] Becker A., Thakur B. K., Weiss J. M., Kim H. S., Peinado H., Lyden D., Cancer Cell, 2016, 30, 836. [17] Xu G., Huang R., Wumaier R., Lyu J., Huang M., Zhang Y., Chen Q., Liu W., Tao M., Li J., Tao Z., Yu B., Xu E., Wang L., Yu G., Gires O., Zhou L., Zhu W., Ding C., Wang H., Cancer Research, 2024, 84, 3267. [18] Tamarindo G. H., Novais A. A., Frigieri B. M., Alves D. L., De Souza C. A., Amadeu A., Da Silveira J. C., Souza F. F., Bordin N. A., Chuffa L. G. A., Zuccari D. A. P. C., Scientific Reports, 2025, 15, 12122. [19] Mertins P., Mani D. R., Ruggles K. V., Gillette M. A., Clauser K. R., Wang P., Wang X., Qiao J. W., Cao S., Petralia F., Kawaler E., Mundt F., Krug K., Tu Z., Lei J. T., Gatza M. L., Wilkerson M., Perou C. M., Yellapantula V., Huang K.-L., Lin C., Mclellan M. D., Yan P., Davies S. R., Townsend R. R., Skates S. J., Wang J., Zhang B., Kinsinger C. R., Mesri M., Rodriguez H., Ding L., Paulovich A. G., Fenyö D., Ellis M. J., Carr S. A., the NCI CPTAC, Nature, 2016, 534, 55. [20] Ngo C. H. L., Hnit S. S. T., Zhang W., Feng X., Tan V. I. C., Hu L., Tsao S. C.-H., Wang Y., Journal of Proteome Research, 2026, 25, 1139. [21] Welsh J. A., Goberdhan D. C. I., O'driscoll L., Buzas E. I., Blenkiron C., Bussolati B., Cai H., Di Vizio D., Driedonks T. a. P., Erdbrügger U., Falcon-Perez J. M., Fu Q.-L., Hill A. F., Lenassi M., Lim S. K., Mahoney M. G., Mohanty S., Möller A., Nieuwland R., Ochiya T., Sahoo S., Torrecilhas A. C., Zheng L., Zijlstra A., Abuelreich S., Bagabas R., Bergese P., Bridges E. M., Brucale M., Burger D., Carney R. P., Cocucci E., Crescitelli R., Hanser E., Harris A. L., Haughey N. J., Hendrix A., Ivanov A. R., Jovanovic-Talisman T., Kruh-Garcia N. A., Ku'ulei-Lyn Faustino V., Kyburz D., Lässer C., Lennon K. M., Lötvall J., Maddox A. L., Martens-Uzunova E. S., Mizenko R. R., Newman L. A., Ridolfi A., Rohde E., Rojalin T., Rowland A., Saftics A., Sandau U. S., Saugstad J. A., Shekari F., Swift S., Ter-Ovanesyan D., Tosar J. P., Useckaite Z., Valle F., Varga Z., Van Der Pol E., Van Herwijnen M. J. C., Wauben M. H. M., Wehman A. M., Williams S., Zendrini A., Zimmerman A. J., Consortium M., Théry C., Witwer K. W., Journal of Extracellular Vesicles, 2024, 13, e12404. [22] Ramirez M. I., Amorim M. G., Gadelha C., Milic I., Welsh J. A., Freitas V. M., Nawaz M., Akbar N., Couch Y., Makin L., Cooke F., Vettore A. L., Batista P. X., Freezor R., Pezuk J. A., RosaFernandes L., Carreira A. C. O., Devitt A., Jacobs L., Silva I. T., Coakley G., Nunes D. N., Carter D., Palmisano G., Dias-Neto E., Nanoscale, 2018, 10, 881. [23] Brennan K., Martin K., Fitzgerald S. P., O’sullivan J., Wu Y., Blanco A., Richardson C., McGee M. M., Scientific Reports, 2020, 10, 1039. [24] Ter-Ovanesyan D., Gilboa T., Budnik B., Nikitina A., Whiteman S., Lazarovits R., Trieu W., Kalish D., Church G. M., Walt D. R., eLife, 2023, 12, e86394. [25] Zhou Y., Liu H., Chen H., TrAC Trends in Analytical Chemistry, 2024, 179, 117874. [26] Zhu L., Sun H.-T., Wang S., Huang S.-L., Zheng Y., Wang C.-Q., Hu B.-Y., Qin W., Zou T.-T., Fu Y., Shen X.-T., Zhu W.-W., Geng Y., Lu L., Jia H.-L., Qin L.-X., Dong Q.-Z., Journal of Hematology & Oncology, 2020, 13, 152. [27] Wu G., Zhao Y., Zhu F., Li B., Feng X., Ji Y., Lu Y., Hu L., CCS Chemistry, 2026, 8, 903. [28] Zhang N., Chen H., Yang C., Hu X., Sun N., Deng C., TrAC Trends in Analytical Chemistry, 2022, 153, 116652. [29] Fang X., Duan Y., Adkins G. B., Pan S., Wang H., Liu Y., Zhong W., Anal. Chem., 2018, 90, 2787. [30] Chen L., Yu W., Zhao J., Jia S., Hu L., Anal. Chem., 2025, 97, 9953. [31] Yu W., Lou F., Chen L., Zhao S., Wei F., Hu L., Anal. Chem., 2026, 98, 15241. [32] Zhou B., Feng J., Zhang Y., Zhang T., Hu C., Liu S., Yin X., Jin M., Bai Y., Chem. Engineer. J., 2025, 516, 163980. [33] Du X., Li E., Wang Q., You X., Chem. Res. Chinese Universities, 2024, 40, 136. [34] Hoshino A., Kim H. S., Bojmar L., Gyan K. E., Cioffi M., Hernandez J., Zambirinis C. P., Rodrigues G., Molina H., Heissel S., Mark M. T., Steiner L., Benito-Martin A., Lucotti S., Di Giannatale A., Offer K., Nakajima M., Williams C., Nogués L., Pelissier Vatter F. A., Hashimoto A., Davies A. E., Freitas D., Kenific C. M., Ararso Y., Buehring W., Lauritzen P., Ogitani Y., Sugiura K., Takahashi N., Alečković M., Bailey K. A., Jolissant J. S., Wang H., Harris A., Schaeffer L. M., García-Santos G., Posner Z., Balachandran V. P., Khakoo Y., Raju G. P., Scherz A., Sagi I., Scherz-Shouval R., Yarden Y., Oren M., Malladi M., Petriccione M., De Braganca K. C., Donzelli M., Fischer C., Vitolano S., Wright G. P., Ganshaw L., Marrano M., Ahmed A., Destefano J., Danzer E., Roehrl M. H. A., Lacayo N. J., Vincent T. C., Weiser M. R., Brady M. S., Meyers P. A., Wexler L. H., Ambati S. R., Chou A. J., Slotkin E. K., Modak S., Roberts S. S., Basu E. M., Diolaiti D., Krantz B. A., Cardoso F., Simpson A. L., Berger M., Rudin C. M., Simeone D. M., Jain M., Ghajar C. M., Batra S. K., Stanger B. Z., Bui J., Brown K. A., Rajasekhar V. K., Healey J. H., De Sousa M., Kramer K., Sheth S., Baisch J., Pascual V., Heaton T. E., La Quaglia M. P., Pisapia D. J., Schwartz R., Zhang H., Liu Y., Shukla A., Blavier L., Declerck Y. A., Labarge M., Bissell M. J., Caffrey T. C., Grandgenett P. M., Hollingsworth M. A., Bromberg J., Costa-Silva B., Peinado H., Kang Y., Garcia B. A., O’reilly E. M., Kelsen D., Trippett T. M., Jones D. R., Matei I. R., Jarnagin W. R., Lyden D., Cell, 2020, 182, 1044. [35] Zhang Y., Zhou B., Li Q., Jin M., Bai Y., Chem. Res. Chinese Universities, 2024, 40, 237. [36] Kulak N. A., Pichler G., Paron I., Nagaraj N., Mann M., Nature Methods, 2014, 11, 319. [37] Hughes C. S., Moggridge S., Müller T., Sorensen P. H., Morin G. B., Krijgsveld J., Nature Protocols, 2019, 14, 68. [38] Gabizon A. A., Barenholz Y., Bialer M., Pharmaceutical Research, 1993, 10, 703. [39] Kruger S., Elmageed Z. Y. A., Hawke D. H., Wörner P. M., Jansen D. A., Abdel-Mageed A. B., Alt E. U., Izadpanah R., BMC Cancer, 2014, 14, 44. [40] Ye Z., Sabatier P., Martin-Gonzalez J., Eguchi A., Lechner M., Østergaard O., Xie J., Guo Y., Schultz L., Truffer R., BekkerJensen D. B., Bache N., Olsen J. V., Nat. Commun., 2024, 15, 2474. [41] Sandberg T. P., Oosting J., Van Pelt G. W., Mesker W. E., Tollenaar R., Morreau H., Oncotarget, 2018, 9, 31502. [42] Carpino G., Cardinale V., Di Giamberardino A., Overi D., Donsante S., Colasanti T., Amato G., Mennini G., Franchitto M., Conti F., Rossi M., Riminucci M., Gaudio E., Alvaro D., Mancone C., J. Hepatol., 2021, 75, 1377. [43] Qi L., Sun B., Yang B., Lu S., Hum. Mol. Genet., 2023, 32, 1850. [44] Gory-Fauré S., Prandini M.-H., Pointu H., Roullot V., PignotPaintrand I., Vernet M., Huber P., Development, 1999, 126, 2093. [45] Zhou L., Yang Y., Ye Y., Qiao Q., Mi Y., Liu H., Zheng Y., Wang Y., Liu M., Zhou Y., Aging (Albany NY), 2024, 16, 11893. [46] Fry S. A., Robertson C. E., Swann R., Dwek M. V., British J. Cancer, 2016, 114, 1019. [47] Shima H., Takatsu H., Fukuda S., Ohmae M., Hase K., Kubagawa H., Wang J.-Y., Ohno H., International Immunology, 2010, 22, 149. [48] Jiang J., Wu R. H., Zhou H. L., Li Z. M., Kou D., Deng Z., Dong M., Chen L. H., Eur. Rev. Med. Pharmacol. Sci., 2020, 24, 5953. [49] Kubagawa H., Honjo K., Ohkura N., Sakaguchi S., Radbruch A., Melchers F., Jani P. K., Frontiers in Immunology, 2019, 10, 945. [50] Das K., Paul S., Ghosh A., Gupta S., Mukherjee T., Shankar P., Sharma A., Keshava S., Chauhan S. C., Kashyap V. K., Parashar D., Cancers, 2023, 15, 4879. [51] Lin Y., Lin E., Li Y., Chen X., Chen M., Huang J., Guo W., Chen L., Wu L., Zhang X., Zhang W., Jin X., Zhang J., Fu F., Wang C., Pathol. Oncol. Res., 2022, 28, 1610559. [52] Wang B., Nguyen M., Breckenridge D. G., Stojanovic M., Clemons P. A., Kuppig S., Shore G. C., J. Biol. Chem., 2003, 278, 14461. [53] Pastor-Cantizano N., Montesinos J. C., Bernat-Silvestre C., Marcote M. J., Aniento F., Protoplasma, 2016, 253, 967. |
| [1] | LIN Yao, WANG Xinyu, WANG Xinyue, LUO Mingyue, YANG Mei, WU Ci. In-depth Phosphoproteome Analysis from Microscale Samples with Rapid In-situ One-tip IMAC Strategy [J]. Chemical Research in Chinese Universities, 2026, 42(2): 504-513. |
| [2] | GAO Yujun, ZHANG Yihan, YE Mingliang, HU Lianghai. Copper Ion-induced Protein Precipitation for Drug Target Discovery by Proteomics [J]. Chemical Research in Chinese Universities, 2026, 42(2): 648-658. |
| [3] | NIU Wenxue, LIU Zheyi, LIU Jing, LAI Can, ZHANG Tingting, ZHAO Heng, WANG Guosheng, WANG Fangjun. Ion-pair Reversed-phase×Low-pH Reversed-phase Two-dimensional Liquid Chromatography for In-depth Proteomic Profiling [J]. Chemical Research in Chinese Universities, 2023, 39(2): 260-265. |
| [4] | SUN Mengjie, FENG Wei, WANG Bowei, HAN Bing, ZOU Jundong, YANG Chunying, LIU Zhihui. Studies on Surface Properties and Cell Adhesion Properties of BSA Modified DBM Scaffold [J]. Chemical Research in Chinese Universities, 2019, 35(4): 700-707. |
| [5] | LI Xu, LI Chuanhua, JIANG Jianhong, GU Huiwen, WEI Deliang, YE Lijuan, HU Jilin, XIAO Shengxiong, ZHANG Hui, LI Xia, LI Qiangguo. Fluorescence Spectroscopic Studies on the Interaction Between a New Bismuth(III) Schiff Base Complex and Bovine Serum Albumin [J]. Chemical Research in Chinese Universities, 2017, 33(2): 166-171. |
| [6] | WANG Cuicui, CAI Wensheng, SHAO Xueguang. Determination of Cysteine Using Near-infrared Diffuse Reflectance Spectroscopy with Enrichment via Thiol-maleimide Click Reaction [J]. Chemical Research in Chinese Universities, 2016, 32(6): 912-916. |
| [7] | LI Xiaodong, FU Yu, MA Lina, WANG Zhenxin, ZHANG Huimao. Spectrometric Study on the Interaction of Indocyanine Green with Human Serum Albumin [J]. Chemical Research in Chinese Universities, 2016, 32(3): 343-347. |
| [8] | CAO Weiqian, HUANG Jiangming, CAO Jing, YANG Pengyuan. Global Insight into N-Glycome and N-Glycoproteome of Three Most Abundant Snake Venoms in Asia [J]. Chemical Research in Chinese Universities, 2014, 30(5): 726-730. |
| [9] | SONG Fengling, XUE Yingying, WANG Xu, WANG Jingyun, XIONG Xiaoqing, PENG Xiaojun. Ratiometric Fluorescent Probe Based on Novel Red-emission BODIPY for Determination of Bovine Serum Albumin [J]. Chemical Research in Chinese Universities, 2014, 30(5): 738-742. |
| [10] | ZHAO Hongyan, ZHANG Zhimin, ZHU Laikuan,LI Zhenling, LI Penglian, LIU Jiabai, ZHANG Zhiying. Differential Proteomics Analysis on Fluoride-resistant Streptococcus mutans by Label-free Quantitation [J]. Chemical Research in Chinese Universities, 2014, 30(4): 566-571. |
| [11] | DU Chuan-rong, LUO Xuan, WEI Jin-rui, HE Ting-ting, ZHENG Xiao-yu, LIN Cui-wu. Preparation of (2E)-3-(4'-Halophenyl)prop-2-enoyl Sulfachlorpyridazine Sodium Salts and Their Interaction with Bovine Serum Albumin by Fluorescence Spectroscopy [J]. Chemical Research in Chinese Universities, 2013, 29(5): 854-860. |
| [12] | LIANG Jin-long, LI Si-jie, LIU Xiang-guo, LI Wan-feng, HAO Dong-yun, FAN Zhi-min. Quantitative Proteomic Studies on TNBC in Premenopausal Patients [J]. Chemical Research in Chinese Universities, 2013, 29(3): 500-505. |
| [13] | ZHANG Jia-xing, YIN Zong-ning, WU Wei, WANG Zhong-xia, HE Rui, WU Zhao-xu. Characterization of Interaction Between Raltitrexed and Bovine Serum Albumin by Optical Spectroscopic Techniques [J]. Chemical Research in Chinese Universities, 2012, 28(6): 963-970. |
| [14] | LU Wei-da, QIU Jie, ZHAO Gai-xia, QIE Liang-yi, WEI Xin-bing, GAO Hai-qing. Quantitative Mitochondrial Proteomics Study on Protective Mechanism of Grape Seed Proanthocyanidin Extracts Against Ischemia/Reperfusion Heart Injury in Rat [J]. Chemical Research in Chinese Universities, 2012, 28(6): 1035-1040. |
| [15] | LIU Zuo-jia, LI Dan, NIU Feng-lan. Characterization of Gallic Acid Interaction with Human Serum Albumin by Spectral and Molecular Modeling Methods [J]. Chemical Research in Chinese Universities, 2012, 28(2): 287-290 . |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||

