Kemerovo, Kemerovo, Russian Federation
Kemerovo, Russian Federation
The cheese-making suitability of milk depends on several factors, including the genetic potential of dairy cattle and environmental conditions. This article examines the systemic relationships between animal genotype, molecular regulatory mechanisms, environmental factors, and processing technologies. A comprehensive analysis of these elements allows for the formulation of practical measures to ensure stable raw material quality. Genetic factors serve as the primary and limiting condition: breed and gene polymorphism significantly influence the composition, structure, and functional properties of milk proteins and fats. These genes include κ-casein (CSN3), β-casein (CSN2), αs1-casein (CSN1S1), β-lactoglobulin (LGB), lipogenic enzyme DGAT1, and mastitis resistance genes. While genetic potential defines biological limits, breeding for technologically valuable alleles remains a core strategy. Paratypical factors either implement or suppress the genetic program through various mechanisms, exerting a profound regulatory impact, which occurs via complex signaling and epigenetic modifications that fine-tune gene expression in mammary epithelial cells in response to resource availability and external stressors. Subclinical mastitis and stress trigger biochemical shifts that impair cheese-making suitability. However, the physiological and seasonal variability of raw materials can be managed through systematic interventions. For instance, colostrum and late-lactation milk must be excluded from cheese production; meanwhile, year-round uniform calving and mandatory milk maturation can smooth quality fluctuations. Ultimately, reliable raw material quality depends on an integrated approach that combines targeted genetic selection, molecular-based environmental management, and rigorous technological standards. Such a system minimizes the natural heterogeneity of milk, ensuring the predictability of the cheese-making process
casein genetic polymorphism, paratypical factors, gene expression, epigenetic regulation, subclinical mastitis, rennet coagulation
1. Kudrina, M. A. Pischevaya cennost' korov'ego moloka / M. A. Kudrina, I. S. Kozhevnikova, N. A. Hudyakova // Vestnik KrasGAU. 2022. № 12(189). S. 229–236. https://doi.org/10.36718/1819-4036-2022-12-229-236; https://elibrary.ru/tsnxfj
2. Ponomarev, A. N. Moloko kak syr'e dlya proizvodstva pischevyh ingredientov. Chast' 1. Frakcionirovanie obezzhirennogo moloka s cel'yu polucheniya ingredientov / A. N. Ponomarev [i dr.] // Molochnaya promyshlennost'. 2021. № 4. S. 34–36. https://doi.org/10.31515/1019-8946-2021-04-34-36; https://elibrary.ru/smbbvc
3. Ponomarev, A. N. Moloko kak syr'e dlya proizvodstva pischevyh ingredientov. Chast' 3. Laktoza i ee derivaty / A. N. Ponomarev [i dr.] // Molochnaya promyshlennost'. 2021. № 6. S. 60–62. https://doi.org/10.31515/1019-8946-2021-06-60-62; https://elibrary.ru/mkssdb
4. Vagapov, F. F. Himicheskiy sostav i kachestvo moloka / F. F. Vagapov, N. V. Gizatova // Michurinskiy agronomicheskiy vestnik. 2017. № 1. S. 51–55. https://elibrary.ru/ywnwmh
5. Hanuš, O. Raw cow milk protein stability under natural and technological conditions of environment by analysis of variance / O. Hanuš [et al.] // Foods. 2021. Vol. 10(9). Art. no. 2017. https://doi.org/10.3390/foods10092017
6. Gavrilova, N. B. Opredelenie vozmozhnosti ispol'zovaniya v tehnologii polutverdogo syra fermentnogo preparata «Lactoferm» / N. B. Gavrilova [i dr.] // Syrodelie i maslodelie. 2024. № 2. S. 54–59. https://doi.org/10.21603/2073-4018-2024-2-2; https://elibrary.ru/sjdlst
7. Gun'kova, P. I. Faktory, opredelyayuschie syroprigodnost' moloka / P. I. Gun'kova [i dr.] // Syrodelie i maslodelie. 2020. № 5. S. 38–42. https://elibrary.ru/vmpcez
8. Mordvinova, V. A. Voprosy prakticheskogo syrodeliya: vozmozhnye prichiny vozniknoveniya nekotoryh porokov konsistencii sozrevayuschih syrov / V. A. Mordvinova, I. L. Ostrouhova, S. G. Il'ina // Syrodelie i maslodelie. 2021. № 6. S. 24–26. https://doi.org/10.33465/2222-5455-2019-12-6-8; https://elibrary.ru/dmnmfp
9. Panthi, R. R. Selection and treatment of milk for cheesemaking / R. R. Panthi [et al]. // Cheese. Chemistry, Physics and Microbiology. Ed. by Paul L. H. McSweeney. – Academic Press, 2017. – P. 23–50. https://doi.org/10.1016/B978-0-12-417012-4.00002-8
10. Mordvinova, V. A. Aktual'nye napravleniya razvitiya sovremennogo syrodeliya (po materialam yubileynoy konferencii VNIIMS) / V. A. Mordvinova, Yu. Ya. Sviridenko // Pererabotka moloka. 2019. № 12(242). S. 6–9. https://doi.org/10.33465/2222-5455-2019-12-6-8; https://elibrary.ru/dmnmfp
11. Golubenko, T. L. Trebovaniya k kachestvu moloka kak syr'ya dlya proizvodstva syra / T. L. Golubenko, E. P. Razanova // Aktual'nye voprosy pererabotki myasnogo i molochnogo syr'ya. 2021. № 15. S. 146–154. https://doi.org/10.47612/2220-8755-2020-15-146-154; https://elibrary.ru/zsfdgh
12. Razumovskiy, N. Polnocennost' kormleniya korov i kachestvo moloka / N. Razumovskiy // Belorusskoe sel'skoe hozyaystvo. 2023. № 4. S. 55–58. https://elibrary.ru/kuyamb
13. Poulsen N. A. Genetic factors affecting the composition and quality of cow’s milk / N. A. Poulsen, B. L. Larsen. – Burleigh Dodds Science Publishing Limited, 2021 – 33 p. http://doi.org/10.19103/AS.2022.0099.15
14. Zaharov, V. L. Vliyanie porody krupnogo rogatogo skota na tehnologicheskie kachestva moloka i vyrabotannogo iz nego syra dlya grilya / V. L. Zaharov [i dr.] // Vestnik KrasGAU. 2022. № 3(180). S. 171–181. https://doi.org/10.36718/1819-4036-2022-3-171-181; https://elibrary.ru/zentry
15. Mkrtchyan, G. V. Mnogoobrazie form molochnyh belkov u golshtinskih i dzherseyskih korov po kappa-kazeinu i beta-laktoglobulinu / G. V. Mkrtchyan, L. A. Kalashnikova // Zootehniya. 2023. № 9. S. 7–11. https://doi.org/10.25708/ZT.2023.45.90.002; https://www.elibrary.ru/agsirc
16. Karamaeva, A. S. Vliyanie porody na syroprigodnost' moloka i kachestvo syra / A. S. Karamaeva, N. V. Soboleva, S. V. Karamaev // Molochnoe i myasnoe skotovodstvo. 2018. № 5. S. 34–38. https://elibrary.ru/xziuct
17. Novgorodskaya, N. V. Faktory opredelyayuschie syroprigodnost' moloka / N. V. Novgorodskaya // Aktual'nye voprosy pererabotki myasnogo i molochnogo syr'ya. 2018. № 12. S. 143–148. https://elibrary.ru/hawmka
18. Medvedskiy, V. Poluchaem kachestvennoe moloko / V. Medvedskiy // Zhivotnovodstvo Rossii. 2019. № S1. S. 71–72. https://doi.org/10.25701/ZZR.2019.44.51.009; https://elibrary.ru/avhpnz
19. Yankovskaya, V. S. Bezopasnost' i kachestvo moloka-syr'ya dlya proizvodstva moloka pit'evogo sterilizovannogo / V. S. Yankovskaya [i dr.] // Molochnaya promyshlennost'. 2021. № 9. S. 57–59. https://doi.org/10.31515/1019-8946-2021-09-57-59; https://elibrary.ru/absiyf
20. Serba, E. V. Vliyanie zootehnicheskih faktorov na belkovyy sostav syrogo korov'ego moloka / E. V. Serba, E. A. Yurova // Agrarnaya nauka. 2024. № 10. S. 192–200. https://doi.org/10.32634/0869-8155-2024-387-10-192-200; https://elibrary.ru/uqhpjt
21. Smolencev, S. Yu. Osnovnye napravleniya povysheniya kachestva moloka (obzor) / S. Yu. Smolencev, I. S. Ivanov, E. V. Hardina // Vestnik Mariyskogo gosudarstvennogo universiteta. Seriya: Sel'skohozyaystvennye nauki. Ekonomicheskie nauki. 2024. T. 10, № 3(39). S. 244–255. https://doi.org/10.30914/2411-9687-2024-10-3-244-255; https://elibrary.ru/vndmgw
22. Sachan R. S. Advancement in cheese production technology / R. S. Sachan, Karnwal, A. // Advances in dairy microbial products. Ed. by J. Singh and A. Vyas – Woodhead Publishing, 2022. – P. 191–208. https://doi.org/10.1016/B978-0-323-85793-2.00023-0
23. Topnikova, E. V. Syrodelie i maslodelie segodnya: problemy i vozmozhnye puti ih resheniya / E. V. Topnikova, G. N. Rogov // Syrodelie i maslodelie. 2022. № 4. S. 4–8. https://doi.org/10.31515/2073-4018-2022-4-4-8; https://elibrary.ru/ebbhcu
24. Konovalova, E. N. Sovremennye aspekty izucheniya komponentnogo sostava moloka korov (obzor) / E. N. Konovalova, E. A. Gladyr' // Molochnoe i myasnoe skotovodstvo. 2025. № 4. S. 27–31. https://doi.org/10.33943/MMS.2025.82.78.005; https://elibrary.ru/qfgjln
25. Lihodeevskaya O. E. Effect of genetic and paratypical factors on milk production in cattle / O. E. Lihodeevskaya [et al.] // IOP Conference Series: Earth and Environmental Science. – IOP Publishing, 2021. – Vol. 677(4). – Art. no. 042039. https://doi.org/10.1088/1755-1315/677/4/042039
26. Terent'eva, N. A. Paratipicheskie i genotipicheskie faktory v ocenke produktivnogo dolgoletiya korov krasno-pestroy porody Krasnoyarskogo kraya / N. A. Terent'eva, I. M. Dunin, G. I. Shichkin // Molochnoe i myasnoe skotovodstvo. 2022. № 6. S. 18–22. https://doi.org/10.33943/MMS.2022.23.20.003; https://elibrary.ru/eghxwh
27. Tyazhchenko, A. N. Rol' genov molochnyh belkov (CSN2, CSN3, BLG) v formirovanii tehnologicheskih svoystv moloka krupnogo rogatogo skota / A. N. Tyazhchenko [i dr.] // Agrarnyy vestnik Nechernozem'ya. 2023. № 3(11). S. 40–49. https://elibrary.ru/mjbckc
28. Kebede, E. Effect of cattle breed on milk composition in the same management conditions / E. Kebede // Ethiopian Journal of Agricultural Sciences. 2018. Vol. 28(2). P. 53–64.
29. Shendakova, T. A. Geneticheskie tendencii v populyaciyah golshtinskogo skota: mul'tiplikativnoe vzaimodeystvie genov i eliminaciya recessivnyh alleley / T. A. Shendakova, A. I. Shendakov, B. E. Bahtin // Biologiya v sel'skom hozyaystve. 2017. № 1(14). S. 25–32. https://elibrary.ru/vnifud
30. Sudarev, N. P. Razvedenie krupnogo rogatogo skota golshtinskoy i cherno-pestroy porod v hozyaystvah Rossii, Central'nogo federal'nogo okruga i Tverskoy oblasti / N. P. Sudarev [i dr.] // Zootehniya. 2016. № 3. S. 2–4. https://elibrary.ru/vojfcn
31. Mkrtchyan, G. V. Korrelyaciya mezhdu priznakami molochnoy produktivnosti u golshtinizirovanyh korov cherno-pestroy porody raznoy selekcii / G. V. Mkrtchyan, A. V. Bakay, F. R. Bakay // Zootehniya. 2020. № 11. S. 2–4. https://doi.org/10.25708/ZT.2020.92.54.001; https://elibrary.ru/fhmmwg
32. Levina, G. N. Sostoyanie i perspektivy razvitiya simmental'skoy porody krupnogo rogatogo skota v Rossiyskoy Federacii / G. N. Levina // Genetika i razvedenie zhivotnyh. 2016. № 1. S. 17–21. https://elibrary.ru/vowfgb
33. Furaeva, N. S. Sovremennyy ekster'er krupnogo rogatogo skota yaroslavskoy porody / N. S. Furaeva, E. A. Zvereva, N. A. Shaehova // Vestnik APK Verhnevolzh'ya. 2022. № 3(59). S. 22–29. https://doi.org/10.35694/YARCX.2022.59.3.003; https://elibrary.ru/unbszo
34. Baranova, N. S. Rol' uchenyh Kostromskogo NIISH v sovershenstvovanii porodno-produktivnyh kachestv skota kostromskoy porody / N. S. Baranova, E. G. Fedosenko // Agrarnyy vestnik Nechernozem'ya. 2023. № 1(9). S. 20–26. https://doi.org/10.52025/2712-8679_2023_01_20; https://elibrary.ru/cmrhft
35. Skorkina, I. A. Izmenenie molochnoy produktivnosti korov simmental'skoy, krasno-pestroy golshtinskoy porod i ih pomesey / I. A. Skorkina, S. A. Lamonov // Vestnik Michurinskogo gosudarstvennogo agrarnogo universiteta. 2020. № 2(61). S. 99–103. https://elibrary.ru/fpvnxg
36. Ivanov, V. Poroda skota i kachestvo syra / V. Ivanov, N. Marzanov, Yu. Samorukov // Zhivotnovodstvo Rossii. 2016. № S3. S. 5–8. https://elibrary.ru/whfied
37. Koschaev, A. G. Geneticheskaya struktura populyacii pervotelok golshtinskogo skota po polimorfizmu molochnyh belkov CSN2, CSN3 i BLG / A. G. Koschaev, A. E. Bud'ko // Veterinariya, zootehniya i biotehnologiya. 2025. № 6. S. 118–125. https://doi.org/10.36871/vet.zoo.bio.202506112; https://elibrary.ru/xwwnfy
38. Zakirova, R. R. Analiz syroprigodnosti molochnogo syr'ya docherey bykov-proizvoditeley raznoy selekcii / R. R. Zakirova, K. E. Shkarupa, G. Yu. Berezkina // Izvestiya Orenburgskogo gosudarstvennogo agrarnogo universiteta. 2021. № 1(87). S. 225–229. https://elibrary.ru/fqcczw
39. Fayzullin, P. V. Molochnaya produktivnost' korov raznoy lineynoy prinadlezhnosti i kachestvo poluchaemogo syra / P. V. Fayzullin, O. V. Gorelik // Glavnyy zootehnik. 2023. № 5(238). S. 43–56. https://doi.org/10.33920/sel-03-2305-05; https://elibrary.ru/vwiglz
40. Chupsheva, N. Yu. Molochnaya produktivnost' korov cherno-pestroy porody v usloviyah OOO «Krasnaya gorka» / N. Yu. Chupsheva // Effektivnoe zhivotnovodstvo. 2023. № 6(188). S. 64–65. https://elibrary.ru/vwiglz
41. Trukhachev, V. Creation of optimal selection-technological model cow of production type based on Holstein genotype / V. Trukhachev [et al.] // Engineering for Rural Development: Proceedings, Jelgava. Vol. 16. – Jelgava: Latvia University of Agriculture, 2017. – P. 916–919. https://doi.org/10.22616/ERDev2017.16.N186
42. Lebedev, S. G. Vliyanie geneticheskih i paratipicheskih faktorov na molochnuyu produktivnost' korov i puti ee povysheniya / S. G. Lebedev [i dr.] // Veterinarnyy zhurnal Belarusi. 2021. № 1(14). S. 87–91. https://elibrary.ru/masjaq
43. Afanas'eva, E. A. Harakter molochnoy produktivnosti korov golshtinskoy porody raznogo proishozhdeniya / E. A. Afanas'eva, A. Yu. Novikova, T. A. Mironova // Effektivnoe zhivotnovodstvo. 2023. № 6(188). S. 62–63. https://elibrary.ru/qxyqci
44. Illarionova, E. E. Metody ocenki svertyvaemosti belkov moloka v sisteme prognozirovaniya tehnologicheskih svoystv / E. E. Illarionova [i dr.] // Tehnika i tehnologiya pischevyh proizvodstv. 2021. T. 51, № 3. S. 503–519. https://doi.org/10.21603/2074-9414-2021-3-503-519; https://elibrary.ru/prttxk
45. Falih, M. A. Enhancing safety and quality in the global cheese industry: A review of innovative preservation techniques / M. A. Falih [et al.] // Heliyon. 2024. Vol. 10(23). Art. no. e40459. https://doi.org/10.1016/j.heliyon.2024.e40459
46. Vel'matov, A. P. Kachestvennyy sostav belkov moloka golshtinizirovannyh korov razlichnyh genotipov / A. P. Vel'matov, N. N. Neyaskin, T. N. Tishkina // Vestnik Ul'yanovskoy gosudarstvennoy sel'skohozyaystvennoy akademii. 2018. № 4(44). S. 136–139. https://doi.org/10.18286/1816-4501-2018-4-136-139; https://elibrary.ru/vrgkwr
47. Illarionova, E. E. Associaciya polimorfizmov v bioklastere genov kazeina i syvorotochnyh belkov s tehnologicheskimi svoystvami molochnogo syr'ya / E. E. Illarionova [i dr.] // Molochnaya promyshlennost'. 2021. № 3. S. 60–62. https://doi.org/10.31515/1019-8946-2021-03-60-62; https://elibrary.ru/qdervg
48. Gil'manov, H. H. Vliyanie kompleksnyh genotipov genov CSN1S1, CSN2, CSN3 na molochnuyu produktivnost' korov i kachestvo moloka / H. H. Gil'manov, S. V. Tyul'kin, R. R. Vafin // Molochnaya promyshlennost'. 2020. № 12. S. 60–61. https://doi.org/10.31515/1019-8946-2020-12-60-61; https://elibrary.ru/abkftr
49. Glotova, G. N. Deystvie allel'nyh variantov gena CSN3 moloka na ego sostav i fiziko-himicheskie pokazateli pri vyrabotke tvoroga / G. N. Glotova, V. A. Pozolotina // Vestnik Ryazanskogo gosudarstvennogo agrotehnologicheskogo universiteta im. P. A. Kostycheva. 2021. T. 13, № 2. S. 14–20. https://doi.org/10.36508/RSATU.2021.50.2.002; https://elibrary.ru/hlerey
50. Tyulkin, S. V. DNA markers – a prediction criterion for yield and quality of raw milk / S. V. Tyulkin [et al.] // News of the National academy of sciences of the Republic of Kazakhstan. Series of geology and technical sciences. 2019. Vol. 6(438). P. 177–183. https://doi.org/10.32014/2019.2518-170X.168
51. Kuznecov, S. B. Novye sochetaniya alleley v variantah genov kazeinovogo klastera krupnogo rogatogo skota i reviziya ih nomenklatury / S. B. Kuznecov [i dr.] // Genetika. 2022. T. 58, № 8. S. 889–901. https://doi.org/10.31857/S0016675822080057; https://elibrary.ru/dhegkw
52. Houaga, I. Polymorphisms in major milk protein genes (LALBA, MBLG, CSN1S1 and CSN3) and milk fat genes (DGAT1 and SCD1) and association with milk production and fatty acid traits in indigenous White Fulani and Borgou cattle breeds in Benin / I. Houaga – JKUAT, 2018. – 145 p.
53. Kurchenko, V. P. Vliyanie molekulyarnoy massy hitozana na vzaimodeystvie s kazeinom / V. P. Kurchenko [i dr.] // Prikladnaya biohimiya i mikrobiologiya. 2018. T. 54, № 5. S. 501–505. https://doi.org/10.1134/S0555109918050112; https://elibrary.ru/xwnutj
54. Padilla Doval, J. Estructura, propiedades y genética de las caseínas de la leche: una revisión / J. Padilla Doval, Ju. C. Zambrano Arteaga // CES Medicina Veterinaria y Zootecnia. 2021. Vol. 16(3). P. 62–95. https://doi.org/10.21615/cesmvz.5231
55. Petrova, S. Yu. Sovremennye svedeniya o kazeinah moloka / S. Yu. Petrova [i dr.] // Bioorganicheskaya himiya. 2022. T. 48, № 2. S. 207–216. https://doi.org/10.31857/S0132342322020178; https://elibrary.ru/fsaulz
56. Kruchinin, A. G. Sravnenie polimorfizma genov molochnyh belkov koz'ego i ovech'ego moloka: mirovoy opyt / A. G. Kruchinin [i dr.] // Pischevaya promyshlennost'. 2020. № 8. S. 36–40. https://doi.org/10.24411/0235-2486-2020-10083; https://elibrary.ru/senomh
57. Safina, N. Yu. Vliyanie kompleksnyh genotipov genov kappa-kazein (CSN3) i beta-laktoglobulin (LGB) na molochnuyu produktivnost' golshtinskogo skota / N. Yu. Safina [i dr.] // Agrarnyy nauchnyy zhurnal. 2020. № 5. S. 64–67. https://doi.org/10.28983/asj.y2020i5pp64-67; https://elibrary.ru/pkuanv
58. Agarkova, E. Yu. Protivodiabeticheskaya aktivnost' belkov molochnoy syvorotki / E. Yu. Agarkova, K. A. Ryazanceva, A. G. Kruchinin // Tehnika i tehnologiya pischevyh proizvodstv. 2020. T. 50, № 2. S. 306–318. https://doi.org/10.21603/2074-9414-2020-2-306-318; https://elibrary.ru/njthxe
59. Ozdemir, M. Associations between BLG, CSN3, DGAT1, GH, PIT1, and PRL gene polymorphisms and milk production traits in Holstein dairy cows: A meta-analysis / M. Ozdemir [et al.] // Biochemical Genetics. 2025. Vol. 63(1). P. 1–21. https://doi.org/10.1007/s10528-024-10706-8
60. Molee, A. Effect of casein genes-beta-LGB, DGAT1, GH, and LHR-on milk production and milk composition traits in crossbred Holsteins / A Molee, C Poompramun, P Mernkrathoke // Genetics and Molecular Research. 2015. Vol. 14(1). P. 2561–2571. https://doi.org/10.4238/2015.march.30.15
61. Hudyakova, N. A. Vliyanie polimorfizma gena LGB na pokazateli molochnoy produktivnosti korov holmogorskoy porody / N. A. Hudyakova, E. N. Schipakova, A. S. Kashin // Vestnik Rossiyskogo universiteta druzhby narodov. Seriya: Agronomiya i zhivotnovodstvo. 2024. T. 19, № 2. S. 324–336. https://doi.org/10.22363/2312-797X-2024-19-2-324-336; https://elibrary.ru/iqhvvg
62. Safina, N. Yu. Polimorfizm gena ß-laktoglobulina (LGB) i ego vzaimosvyaz' s ekonomicheski vazhnymi priznakami golshtinskogo skota / N. Yu. Safina [i dr.] // Dostizheniya nauki i tehniki APK. 2018. T. 32, № 9. S. 78–80. https://doi.org/10.24411/0235-2451-2018-10918
63. Parygina, E. V. Svyaz' allel'nyh variantov A i V gena beta-laktoglobulina s molochnoy produktivnost'yu krupnogo rogatogo skota / E. V. Parygina, I. S. Kozhevnikova // Genetika. 2023. T. 59, № 2. S. 127–134. https://doi.org/10.31857/ S0016675823020078; https://elibrary.ru/kxxozd
64. Pozovnikova, M. V. Svyaz' polimorfizma gena DGAT1 s hozyaystvenno poleznymi priznakami korov / M. V. Pozovnikova [i dr.] // Molochnoe i myasnoe skotovodstvo. 2017. № 8. S. 9–12. https://elibrary.ru/ylynob
65. Pozovnikova, M. V. Molochnaya produktivnost' korov s razlichnymi genotipami gena DGAT1 / M. V. Pozovnikova // Effektivnoe zhivotnovodstvo. 2018. № 7(146). S. 46–47. https://elibrary.ru/yundxf
66. Ivanova, I. P. Polimorfizm gena DGAT1 v populyacii korov krasnoy stepnoy porody v Omskoy oblasti / I. P. Ivanova, Ya. A. Kabickaya // Vestnik Omskogo gosudarstvennogo agrarnogo universiteta. 2023. № 4(52). S. 56–61. https://elibrary.ru/xzktdu
67. Tret'yakova, R. F. Vliyanie polimorfizma gena DGAT1 na produktivnost' myasnogo skota kalmyckoy porody / R. F. Tret'yakova, F. G. Kayumov // Molochnoe i myasnoe skotovodstvo. 2024. № 3. S. 16–19. https://doi.org/10.33943/MMS.2024.55.52.004; https://elibrary.ru/awjbku
68. Zaripov, O. G. Vliyanie faktorov sredy i polimorfizma gena DGAT1 na izmenchivost' priznakov molochnoy produktivnosti i profil' zhirnyh kislot moloka golshtinizirovannyh cherno-pestryh korov / O. G. Zaripov [i dr.] // Journal of Agriculture and Environment. 2024. № 1(41). Nomer stat'i 16. https://doi.org/10.23649/JAE.2024.41.8; https://elibrary.ru/cplldx
69. Turk, R. The role of oxidative stress and inflammatory response in the pathogenesis of mastitis in dairy cows / R. Turk [et al.] // Mljekarstvo: časopis za unaprjeđenje proizvodnje i prerade mlijeka. 2017. Vol. 67(2). P. 91–101. https://doi.org/10.15567/mljekarstvo.2017.0201
70. Sokol, C. L. The chemokine system in innate immunity / C. L. Sokol, A. D. Luster // Cold Spring Harbor perspectives in biology. 2015. Vol. 7(5). Art. no. a016303. https://doi.org/10.1101/cshperspect.a016303
71. Selvan, A. S. Molecular characterization and combined genotype association study of bovine cluster of differentiation 14 gene with clinical mastitis in crossbred dairy cattle / A. S. Selvan [et al.] // Veterinary World. 2016. Vol.9(7). P. 680–684 https://doi.org/10.14202/vetworld.2016.680-684
72. Alekseev, A. A. Izuchenie associacii polimorfizmov v genah card15 i tlr4 s produktivnost'yu i kolichestvom somaticheskih M-kletok u korov cherno-pestroy porody / A. A. Alekseev, I. V. Vinogradova, O. V. Kostyunina // Effektivnoe zhivotnovodstvo. 2018. № 1(140). S. 36–37. https://elibrary.ru/ypnura
73. Pokorska, J. The influence of BoLA-DRB3 alleles on incidence of clinical mastitis, cystic ovary disease and milk traits in Holstein Friesian cattle / J. Pokorska [et al.] // Molecular Biology Reports. 2018. Vol. 45(5). P. 917–923. https://doi.org/10.1007/s11033-018-4238-0
74. Abdel'manova, A. S. Ocenka polimorfizmov lokusa Bola-DRB3.2 v obrazcah krupnogo rogatogo skota raznyh vekov / A. S. Abdel'manova, N. V. Bardukov // Izvestiya Sankt-Peterburgskogo gosudarstvennogo agrarnogo universiteta. 2024. № 3(77). S. 71–78. https://doi.org/10.24411/2078-1318-2024-3-71-78; https://elibrary.ru/cjvqif
75. Úsuga-Monroy, C. Association between genes Bola-DRB3.2*8 and Bola-DRB3.2*12 with resistance and Bola-DRB3.2*16 with susceptibility to infection by bovine leukemia virus / C. Úsuga-Monroy, J. J. Echeverri Zuluaga, A. López-Herrera // Pakistan Veterinary Journal. 2016. Vol. 36(4). P. 400–404.
76. Loat, S. Allelic diversity at BoLA DRB3 locus and association with predisposition to clinical mastitis in indicus and crossbred cattle / S. Loat [et al.] // Animal Biotechnology. 2023. Vol. 34(4). P. 1030–1039 https://doi.org/10.1080/10495398.2021.2010088
77. Kuleshova, E. Gen BoLA-DRB3 i molochnaya produktivnost' / E. Kuleshova, N. Kovalyuk, M. Bondarenko // Zhivotnovodstvo Rossii. 2021. № S2. S. 9–11. https://doi.org/10.25701/ZZR.2020.58.75.008; https://elibrary.ru/spttnh
78. Sulimova, G. E. Unikal'nost' kostromskoy porody krupnogo rogatogo skota s pozicii molekulyarnoy genetiki / G. E. Sulimova [i dr.] // Dostizheniya nauki i tehniki APK. 2011. № 9. S. 52–54. https://elibrary.ru/ogbszp
79. Johnson M. E. Factors affecting cheese quality / M. E. Johnson // Cheese. Chemistry, Physics and Microbiology. Ed. by P. L. H. McSweeney. – Academic Press, 2025. – P. 633–649. https://doi.org/10.1016/B978-0-443-15956-5.00045-2
80. Khan, M. U. Comprehensive review of enzymes (protease, lipase) in milk: Impact on storage quality, detection methods, and control strategies / M. U. Khan [et al.] // Comprehensive Reviews in Food Science and Food Safety. 2025. Vol. 24(3). Art. no. e70164. https://doi.org/10.1111/1541-4337.70164
81. Voronina, O. A. Mineral'nye elementy v sostave moloka korov - mini-obzor / O. A. Voronina, N. V. Bogolyubova, S. Yu. Zaycev // Sel'skohozyaystvennaya biologiya. 2022. T. 57, № 4. S. 681–693 https://doi.org/10.15389/agrobiology.2022.4.681rus; https://elibrary.ru/bmbzxd
82. Gutiérrez-Reinoso M. A. A review of inbreeding depression in dairy cattle: current status, emerging control strategies, and future prospects / M. A. Gutiérrez-Reinoso, P. M. Aponte, M. García-Herreros // Journal of Dairy Research. 2022. Vol. 89(1). P. 3–12. https://doi.org/10.1017/S0022029922000188
83. Hramov, A. P. Teoriya i praktika selekcii sel'skohozyaystvennyh zhivotnyh / A. P. Hramov, A. N. Krovikova, F. R. Bakay // Vestnik Michurinskogo gosudarstvennogo agrarnogo universiteta. 2023. № 4(75). S. 186–189. https://elibrary.ru/rixszt
84. Webster, J. Understanding the dairy cow / J. Webster. – Wiley-Blackwell, 2020. –274 p.
85. Gupta, J. P. Additive and nonadditive genetic effects on milk production / J. P. Gupta // Handbook of Milk Production, Quality and Nutrition. Ed. by Tanmoy Rana. – Academic Press, 2025. – P. 181-191. https://doi.org/10.1016/B978-0-443-24820-7.00018-3
86. San Segundo-Val, I. S. Introduction to the gene expression analysis / I. S. Segundo-Val, C. S. Sanz-Lozano // Methods in molecular biology. 2016.Vol. 1434. P. 29–43. https://doi.org/10.1007/978-1-4939-3652-6_3
87. Nakonechnyy, A. A. Mochevina v moloke kak marker pravil'nogo pitaniya korov i sinteza molochnogo belka / A. A. Nakonechnyy, A. L. Dydykina // Molochnaya promyshlennost'. 2021. № 7. S. 59–61. https://doi.org/10.1007/978-1-4939-3652-6_3; https://elibrary.ru/yenvpe
88. Cao, Y. Molecular mechanisms relating to amino acid regulation of protein synthesis / Y. Cao [et al.] // Nutrition research reviews. 2019. Vol. 32(2). P. 183–191. https://doi.org/10.1017/S0954422419000052
89. Lyabin, D. N. Identifikaciya belkov, specificheski vzaimodeystvuyuschih s 3’-netransliruemoy oblast'yu mRNK YB-1, i issledovanie vliyaniya belka hnRNP Q na translyaciyu mRNK YV-1 / D. N. Lyabin [i dr.] // Biohimiya. 2013. T. 78, № 6. S. 840–850. https://elibrary.ru/qlideh
90. Nailwal, N. P. Role of intracellular signaling pathways and their inhibitors in the treatment of inflammation / N. P. Nailwal, G. M. Doshi // Inflammopharmacology. 2021. Vol. 29. P. 617–640. https://doi.org/10.1007/s10787-021-00813-y
91. Cherepanov, G. G. Fiziologo-biohimicheskie aspekty regulyacii produkcii molochnogo belka u zhvachnyh zhivotnyh / G. G. Cherepanov, Z. N. Makar // Sel'skohozyaystvennaya biologiya. 2004. T. 39, № 4. S. 24–36. https://elibrary.ru/pgcixz
92. Mironenko, I. M. Algoritmy preobrazovaniya moloka v syr / I. M. Mironenko // Syrodelie i maslodelie. 2018. № 4. S. 44–47. https://elibrary.ru/xuklxv
93. Skamarohova, A. S. Ocenka vozdushno-suhoy massy viko-zlakovyh travosmesey po optimal'nosti v sootnoshenii neytral'no-detergentnoy (NDK/ NDF) i kislotno-detergentnoy kletchatki (KDK/ ADF) / A. S. Skamarohova // Mezhdunarodnyy nauchno-issledovatel'skiy zhurnal. 2020. № 12-1(102). S. 177–181. https://doi.org/10.23670/IRJ.2020.102.12.030; https://elibrary.ru/zgcclr
94. Hodson, L. The regulation of hepatic fatty acid synthesis and partitioning: The effect of nutritional state / L. Hodson, P. J .Gunn // Nature Reviews Endocrinology. 2019. Vol. 15(12). P. 689–700. https://doi.org/10.1038/s41574-019-0256-9
95. Guo, Z. Impacts of heat stress-induced oxidative stress on the milk protein biosynthesis of dairy cows / Z. Guo [et al.] // Animals. 2021. Vol. 11(3). P. 1–14. https://doi.org/10.3390/ani11030726
96. Sarkies, P. Molecular mechanisms of epigenetic inheritance: Possible evolutionary implications / P. Sarkies // Seminars in Cell and Developmental Biology. 2020. Vol. 97. P. 106–115. – DOIhttps://doi.org/10.1016/j.semcdb.2019.06.005. https://elibrary.ru/evzbwn
97. Dai, W. T. Transcriptomic profiles of the bovine mammary gland during lactation and the dry period / W. T. Dai [et al.] // Functional & Integrative Genomics. 2018. Vol. 18(2). P. 125–140. https://doi.org/10.1007/s10142-017-0580-x
98. Peñagaricano, F. Effect of maternal methionine supplementation on the transcriptome of bovine preimplantation embryos / F. Peñagaricano [et al.] // PloS one. 2013. Vol. 8(8). Art. no. e72302. https://doi.org/10.1371/journal.pone.0072302
99. Guseva, T. A. Vliyanie geneticheskih faktorov na produktivnye kachestva korov-pervotelok / T. A. Guseva [i dr.] // Glavnyy zootehnik. 2024. № 2(247). S. 3–13. https://doi.org/10.33920/sel-03-2402-01; https://elibrary.ru/bxihvr
100. Akintan, O. A. Linking animal feed formulation to milk quantity, quality, and animal health through data-driven decisionmaking / O. A. Akintan, K. G. Gebremedhin, D. D. Uyeh // Animals. 2025. Vol. 15(2). Art. no. 162. https://elibrary.ru/wkzpso
101. Ganuschenko, O. Sovremennye podhody k normirovaniyu potrebnostey molochnogo skota v pitatel'nyh veschestvah / O. Ganuschenko // Veterinarnoe delo (Minsk). 2025. № 1. S. 39–44. https://elibrary.ru/gnomfo
102. Widyobroto, B. P. The impact of balanced energy and protein supplementation to milk production and quality in early lactating dairy cows / B. P. Widyobroto [et al.] // Journal of the Indonesian Tropical Animal Agriculture. 2016. Vol. 41(2). P. 83–90. https://doi.org/10.14710/jitaa.41.2.83-90
103. Ryadchikov, V. G. Raspadaemost' kormovogo belka - vazhnyy faktor effektivnosti ispol'zovaniya azota i molochnoy produktivnosti laktiruschih korov / V. G. Ryadchikov [i dr.] //Effektivnoe zhivotnovodstvo. 2019. № 3(151). S. 42–48. https://elibrary.ru/sjaiis
104. Ryadchikov, V. G. Izuchenie vliyaniya zaschischennyh ot raspada v rubce lizina i metionina, na pokazateli molochnoy produktivnosti i zdorov'ya vysokoproduktivnyh korov / V. G. Ryadchikov [i dr.] // Politematicheskiy setevoy elektronnyy nauchnyy zhurnal Kubanskogo gosudarstvennogo agrarnogo universiteta. 2020. № 155. S. 194–219. https://doi.org/10.21515/1990-4665-155-016; https://elibrary.ru/pnpmqw
105. Hossain M. E. Sub-acute ruminal acidosis in dairy cows: Its causes, consequences and preventive measures / M. E. Hossain // Online Journal of Animal and Feed Research. 2020. Vol. 10(1). P. 302–312. https://doi.org/10.51227/ojafr.2020.41
106. Evglevskiy, A. A. Problemy zdorov'ya korov v molochnom zhivotnovodstve: izvestnye i neizvestnye aspekty / A. A. Evglevskiy // Veterinariya i kormlenie. 2022. № 6. S. 25–28. https://doi.org/10.30917/ATT-VK-1814-9588-2022-6-6; https://elibrary.ru/sepply
107. Wang, H. R. Effects of dietary physically effective neutral detergent fiber content on the feeding behavior, digestibility, and growth of 8-to 10-month-old Holstein replacement heifers / H. R Wang [et al.] // Journal of dairy science. 2017. Vol. 100(2). P. 1161–1169.
108. Polischuk, V. V. Zhirnokislotnyy sostav syrogo korov'ego moloka / V. V. Polischuk, L. Yu. Andreeva // Vestnik molodezhnoy nauki Altayskogo gosudarstvennogo agrarnogo universiteta. 2021. № 1. S. 154–157. https://elibrary.ru/wyywty
109. Urrutia, N. L. Acetate dose-dependently stimulates milk fat synthesis in lactating dairy cows / N. L. Urrutia, K. J. Harvatine // The Journal of nutrition. 2017. Vol. 147(5). P. 763–769. https://doi.org/10.3945/jn.116.245001
110. Haritonov, E. L. Kormovye i metabolicheskie faktory formirovaniya zhirnokislotnogo sostava moloka u korov / E. L. Haritonov, D. E. Panyushkin // Problemy biologii produktivnyh zhivotnyh. 2016. № 2. S. 76–106. https://elibrary.ru/waacbj
111. Loginov, V. A. Korrekciya tehnologicheskih rezhimov vyrabotki syrov pri izmenenii kachestva moloka / V. A. Loginov, E. T. Linkevich, A. A. Mayorov // Syrodelie i maslodelie. 2018. № 6. S. 15–17. https://elibrary.ru/yzkyah
112. Karlikova, G. G. Biomarkery moloka, otrazhayuschie processy metabolizma v organizme korov v period laktacii / G. G. Karlikova, I. A. Lashneva, A. A. Sermyagin // Journal of Agriculture and Environment. 2024. № 11(51). Nomer stat'i 15. https://doi.org/10.60797/JAE.2024.51.1; https://elibrary.ru/foihnh
113. Kosolapova, V. G. Vliyanie mikotoksinov na zdorov'e i produktivnost' molochnogo skota / V. G. Kosolapova, M. M. Halifa, H. G. Ishmuratov // Kormoproizvodstvo. 2021. № 9. S. 38–46. https://doi.org/10.25685/krm.2021.9.2021.004; https://elibrary.ru/izoaee
114. Chernyshkov, A. S. Vliyanie adsorbenta mikotoksinov na produktivnost' laktiruyuschih korov / A. S. Chernyshkov, V. A. Karatunov // Vestnik Donskogo gosudarstvennogo agrarnogo universiteta. 2019. № 4-1(34). S. 20–23. https://elibrary.ru/synjfa
115. Koshnerov, A. G. Mikotoksiny - nevidimaya opasnost' v prodovol'stvennom syr'e i produktah / A. G. Koshnerov, V. A. Gerasimchik // Nashe sel'skoe hozyaystvo. 2023. № 2(298). S. 32–37. https://elibrary.ru/slpvtd
116. Mironenko, I. M. Funkcii vody v moloke i syre / I. M. Mironenko // Syrodelie i maslodelie. 2021. № 6. S. 40–43. https://doi.org/10.31515/2073-4018-2021-6-40-43; https://elibrary.ru/axnkcz
117. Yankovskaya, V. S. Analiz opasnyh faktorov pri proizvodstve moloka-syr'ya, prednaznachennogo dlya vyrabotki polutverdyh syrov / V. S. Yankovskaya [i dr.] // Syrodelie i maslodelie. 2021. № 4. S. 50–52. https://doi.org/10.31515/2073-4018-2021-4-50-52; https://elibrary.ru/ovjezp
118. Basonov, O. A. Tehnologicheskie svoystva moloka korov-pervotelok golshtinskoy porody v zavisimosti ot sposoba soderzhaniya i tehnologii doeniya / O. A. Basonov [i dr.] // Zootehniya. 2023. № 7. S. 20–23. https://doi.org/10.25708/ZT.2023.45.69.006; https://elibrary.ru/qujwkx
119. Il', E. N. Intensivnost' obmennyh processov v organizme vysokoproduktivnyh korov / E. N. Il', M. V. Zabolotnyh // Vestnik NGAU (Novosibirskiy gosudarstvennyy agrarnyy universitet). 2019. № 2(51). S. 75–81. https://doi.org/10.31677/2072-6724-2019-51-2-75-81; https://elibrary.ru/hsabwp
120. Isabaev, A. Zh. Pokazateli, opredelyayuschie kachestvo i bezopasnost' moloka i molochnyh produktov / A. Zh. Isabaev, G. K. Alieva // Mir Innovaciy. 2017. № 1. S. 4–8. https://elibrary.ru/zglarz
121. Hickey, C. D. The influence of cheese manufacture parameters on cheese microstructure, microbial localisation and their interactions during ripening: A review / C. D. Hickey [et al.] // Trends in food science & technology. 2015. Vol. 41(2). P. 135–148. https://doi.org/10.1016/j.tifs.2014.10.006
122. Sviridenko, G. M. Stepen' zrelosti moloka kak pokazatel' ego cyroprigodnosti / G. M. Sviridenko, I. L. Ostrouhova, D. V. Ostrouhov // Syrodelie i maslodelie. 2025. № 4. S. 12–18. https://doi.org/10.21603/2073-4018-2025-4-37; https://elibrary.ru/raagtb
123. Avdeenko, V. S. Kachestvennyy sostav moloka korov so skrytoy formoy mastita / V. S. Avdeenko [i dr.] // Veterinariya, zootehniya i biotehnologiya. 2018. № 7. S. 12–18. https://elibrary.ru/xvmcvn
124. Guinee, T. P. Control and prediction of quality characteristics in the manufacture and ripening of cheese / T. P. Guinee, D. J. O’callaghan // Technology of cheesemaking. Ed. by A. Law, A. Y. Tamime. Blackwell Publishing Ltd, 2010. P. 260–329. https://doi.org/10.1002/9781444323740.ch8
125. Kurak, A. Somaticheskie kletki v moloke - pokazatel' zdorov'ya / A. Kurak // Zhivotnovodstvo Rossii. 2019. № 4. S. 51–53. https://doi.org/10.25701/ZZR.2019.75.82.003; https://elibrary.ru/liznce
126. Fedosova, A. N. Kachestvo moloka-syr'ya -vazhneyshiy faktor syrodeliya / A. N. Fedosova, M. V. Kaledina // Molochnaya reka. 2022. № 2(86). S. 42–45. https://elibrary.ru/puxxdw
127. Lozovskaya, D. S. Tehnologicheskie svoystva moloziva / D. S. Lozovskaya, O. V. Dymar // Molochnaya promyshlennost'. 2022. № 1. S. 55–57. https://doi.org/10.31515/1019-8946-2022-01-55-57; https://elibrary.ru/tqmwyb
128. Leont'eva, S. A. Molozivo korov - perspektivnoe syr'e dlya proizvodstva pischevyh produktov / S. A. Leont'eva [i dr.] // Industriya pitaniya. 2021. T. 6, № 2. S. 23–33. https://doi.org/10.29141/2500-1922-2021-6-2-3; https://elibrary.ru/xpmbtf
129. Lozovskaya, D. S. Opredelenie trebovaniy k molozivu-syr'yu, ego tehnologicheskaya klassifikaciya. Razrabotka bazovyh tehnologicheskih podhodov k pererabotke moloziva / D. S. Lozovskaya, O. V. Dymar // Aktual'nye voprosy pererabotki myasnogo i molochnogo syr'ya. 2023. № 18. S. 183–191. https://elibrary.ru/khtvam
130. Afanas'ev, M. P. Belkovyy sostav i tehnologicheskie svoystva moloka korov v period zaversheniya laktacii / M. P. Afanas'ev [i dr.] // Dostizheniya nauki i tehniki APK. 2010. № 9. S. 42–44. https://elibrary.ru/mvuspn
131. Mironova, A. V. K voprosu sezonnyh izmeneniy sinereticheskih svoystv sychuzhnyh sgustkov moloka dlya proizvodstva syra / A. V. Mironova [i dr.] // Aktual'nye voprosy molochnoy promyshlennosti, mezhotraslevye tehnologii i sistemy upravleniya kachestvom. 2020. T. 1, № 1(1). S. 382–386. https://doi.org/10.37442/978-5-6043854-1-8-2020-1-382-386; https://elibrary.ru/bixnip
132. Portnoy, A. I. Ocenka sezonnyh kolebaniy sostava i svoystv moloka v usloviyah severo-vostochnoy zony Belarusi / A. I. Portnoy // Aktual'nye problemy intensivnogo razvitiya zhivotnovodstva. 2017. № 20-2. S. 20–27. https://elibrary.ru/ynitlb
133. Bakirov, B. Mikrobiologicheskie i metabolicheskie aspekty acidoza rubca u vysokoproduktivnyh korov / B. Bakirov, B. N. Hayitov, Yu. Uluғmurodov // Vestnik Oshskogo gosudarstvennogo universiteta. 2021. № 1-2. S. 210–214. https://doi.org/10.52754/16947452_2021_1_2_210; https://elibrary.ru/tsykyi
134. Gorelik, A. S. Izuchenie vliyaniya molochnogo syr'ya po sezonam goda na tehnologicheskie parametry pri proizvodstve myagkogo syra / A. S. Gorelik, M. B. Rebezov, O. V. Gorelik // Agrarnaya nauka. 2023. № 9. S. 59–63. https://doi.org/10.32634/0869-8155-2023-374-9-59-63; https://elibrary.ru/jtnxlb
135. Larionov, G. A. Himicheskiy sostava moloka korov v osenne-zimniy period / G. A. Larionov, K. D. Egorova // Rossiyskiy zhurnal Problemy veterinarnoy sanitarii, gigieny i ekologii. 2021. № 3(39). S. 274–279. https://doi.org/10.36871/vet.san.hyg.ecol.202103006; https://elibrary.ru/yfrdil
136. Zuev, N. P. Faktory, vliyayuschie na molochnuyu produktivnost' korov / N. P. Zuev, V. Yu. Safonov // Aktual'nye voprosy sel'skohozyaystvennoy biologii. 2021. № 2(20). S. 52–55. https://elibrary.ru/yfrdil
137. Simonov, P. G. Sovershenstvovanie sinhronizacii polovyh ciklov u korov v usloviyah intensivnogo proizvodstva / P. G. Simonov [i dr.] // Veterinariya Kubani. 2024. № 4. S. 20–22. https://doi.org/10.33861/2071-8020-2024-4-20-22; https://elibrary.ru/rplfrm
138. Shishkina, T. V. Molochnaya produktivnost' korov v zavisimosti ot sezona otela / T. V. Shishkina [i dr.] // Niva Povolzh'ya. 2025. № 1(73). https://doi.org/10.36461/NP.2025.73.1.020; https://elibrary.ru/ptllty
139. Nakonechnyy, A. A. Sezon otela korov kak faktor vliyaniya na produktivnost' i kachestvo moloka / A. A. Nakonechnyy, A. L. Dydykina, A. O. Vyaz'minov // Molochnaya promyshlennost'. 2022. № 12. S. 50–52. https://doi.org/10.31515/1019-8946-2022-12-50-52; https://elibrary.ru/chjvpw



