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Abera Y., Angaw M. (2015). Handling practice and microbial quality of raw cow’s milk produced and marketed in Adigrat town, North Eastern Tigray. Journal of Biology, Agriculture and Healthcare, 5: 160–169 Search in Google Scholar

AOAC (2000). Official Methods of Analysis No. 998.06, 17th ed. AOAC International: Arlington, VA, USA. Search in Google Scholar

AOAC (2019). Official Methods of Analysis. Collection of Milk Laboratory Sample. 925.20, 21st ed. AOAC International: Arlington, VA, USA. Search in Google Scholar

AOCS Official Method Ce 2–66 (2017). Preparation of methyl esters of fatty acids. American Oil Chemists’ Society: Urbana, IL, USA. Search in Google Scholar

Auldist M.J., Marett L.C., Greenwood J.S., Hannah M., Jacobs J.L., Wales J. (2013). Effects of different strategies for feeding supplements on milk production responses in cows grazing a restricted pasture allowance. J. Dairy Sci., 96: 1218–1231. Search in Google Scholar

Bär C., Sutter M., Kopp C., Neuhaus P., Portmann R., Egger L., Reidy B., Bisig W. (2020). Impact of herbage proportion, animal breed, lactation stage and season on the fatty acid and protein composition of milk. Int. Dairy J., 109: 104785. Search in Google Scholar

Barłowska J. (2011). Milk. In: Z. Litwińczuk (Editor), Methods of commodity evaluation of animal raw materials and products (in Polish). Lublin, Poland, University of Life Sciences, pp. 5-46.Barłowska J., Litwińczuk Z. (2006). Technological usefulness of milk from two local breeds maintained in the regions with great grassland share. Archiv Tierzucht, 49: 207–213. Search in Google Scholar

Barłowska J., Litwińczuk Z., Wolanciuk A., Brodziak A. (2009). The relationship of somatic cell count to daily yield and technological usefulness of milk from different breeds of cows. Pol. J. Veter. Sci., 12: 75–79. Search in Google Scholar

Barłowska J., Chabuz W., Król J., Szwajkowska M., Litwińczuk Z. (2012). Nutritional value and technological usefulness of milk produced in an intensive and traditional system in three regions of Eastern Poland (in Polish). Żywn. Nauk. Technol. J., 83: 122–135. Search in Google Scholar

Barłowska J., Wolanciuk A., Kędzierska-Matysek M., Litwińczuk Z. (2013). Effect of production season on basic chemical composition and content of macro-and microelements in cow’s and goat’s milk (in Polish). Żywn. Nauk. Technol. J., 91: 69–78. Search in Google Scholar

Barłowska J., Litwińczuk Z., Kowal M. (2014). Influence of production season and lactation stage on the technological suitability of milk from cows of various breeds fed in the TMR system. Ann. Anim. Sci., 14: 649–661. Search in Google Scholar

Battaglini L.M., Renna M., Garda A., Lussiana C., Malfatto V., Mimosi A., Bianchi M. (2009). Comparing milk yield, chemical properties and somatic cell count from organic and conventional mountain farming systems. Ital. J. Anim. Sci., 8: 384–386. Search in Google Scholar

Bayram B., Özdemir V.F., Ergün O.F. (2021). Organic dairy cattle farming (Chapter 3) (in:) Organic Agriculture – Plant & Livestock Production. Özyazici G., Hanoğlu Oral H. (Eds.). Iksad Publications, Turkey. Search in Google Scholar

Bilik K., Łopuszańska-Rusek M. (2010). Effect of organic and conventional feeding of Redand-White cows on productivity and milk composition. Ann. Anim. Sci., 10: 441–458. Search in Google Scholar

Bittante G., Penasa M., Cecchinato A. (2012). Invited review: Genetics and modelling of milk coagulation properties. J. Dairy Sci., 95: 6843–6870. Search in Google Scholar

Bondan C., Folchini J.A., Guimarães L., Noro M., Zanella R., Alves L.P., Fontaneli R.S., Gonzalez F. (2021). Milk yield and composition in dairy cows with post-partum disorders. Arq. Bras. Med. Vet. Zootec., 73: 639–646. Search in Google Scholar

Brodziak A., Barłowska J., Król J., Litwińczuk Z. (2012). Effect of breed and feeding system on content of selected whey proteins in cow's milk in spring-summer and autumn-winter seasons. Ann. Anim. Sci., 12: 261–269. Search in Google Scholar

Brodziak A., Król J., Litwińczuk Z., Barłowska J. (2018). Differences in bioactive protein and vitamin status of milk from certified organic and conventional farms. Int. J. Dairy Technol., 71: 321–332. Search in Google Scholar

Brodziak A., Król J., Barłowska J., Litwińczuk Z., Teter A., Kędzierska-Matysek M. (2020). Differences in bioactive protein and vitamin status of milk obtained from Polish local breeds of cows. Ann. Anim. Sci., 20: 287–298. Search in Google Scholar

Brodziak A., Wajs J., Zuba-Ciszewska M., Król J., Stobiecka M., Jańczuk A. (2021a). Organic versus conventional raw cow milk as material for processing. Animals, 11: 2760. Search in Google Scholar

Brodziak A., Król J., Litwińczuk Z., Florek M. (2021b). Bioactive compound levels and sensory quality of partially skimmed organic yoghurts: Effects of the milk treatment, production season and starter culture. Int. J. Dairy Technol., 74: 139–147. Search in Google Scholar

Butler G., Stergiadis S., Seal C., Eyre M., Leifert C. (2011). Fat composition of organic and conventional retail milk in northeast England. J. Dairy Sci., 94: 24–36. Search in Google Scholar

Collomb M., Bisig W., Bütikofer U., Sieber R., Bregy M., Etter L. (2008). Fatty acid composition of mountain milk from Switzerland: Comparison of organic and integrated farming systems. Int. Dairy J., 18: 976–982. Search in Google Scholar

De Marchi M., Dal Zotto R., Cassandro M., Bittante G. (2007). Milk coagulation ability of five dairy cattle breeds. J. Dairy Sci., 90: 3986–3992. Search in Google Scholar

Dumpler J., Huppertz T., Kulozik U. (2020). Invited review: Heat stability of milk and concentrated milk: Past, present, and future research objectives. J. Dairy Sci., 103: 10986–11007. Search in Google Scholar

Ellis K., Innocent G., Grove-White D., Cripps P., McLean W., Howard C., Mihm M. (2006). Comparing the fatty acid composition of organic and conventional milk. J. Dairy Sci., 89: 1938–1950. Search in Google Scholar

European Commission – EC (2019). Communication from the Commission to the European Parliament, the European Council, the Council, the European Economic and Social Committee and the Committee of the Regions, European Green Deal, COM, 2019, 640 final, 11.12.2019. Search in Google Scholar

Fall N., Emanuelson U. (2011). Fatty acid content, vitamins and selenium in bulk tank milk from organic and conventional Swedish dairy herds during the indoor season. J. Dairy Sci., 78: 287–292. Search in Google Scholar

Ferreiro T., Gayoso L., Rodríguez-Otero J.L. (2015). Milk phospholipids: Organic milk and milk rich in conjugated linoleic acid compared with conventional milk. J. Dairy Sci., 98: 9–14. Search in Google Scholar

Florio M., Giannone C., Ianni A., Bennato F., Grotta L., Martino G. (2022). Seasonal and feeding system effects on qualitative parameters of bovine milk produced in the Abruzzo region (Italy). Agriculture, 12: 917. Search in Google Scholar

Gabryszuk M., Słoniewski K., Sakowski T. (2008). Macro-and microelements in milk and hair of cows from conventional vs. organic farms. Anim. Sci. Pap. Rep., 26: 199–209. Search in Google Scholar

Groszyk J. (2022). Ecological agriculture in Poland in the context of EU strategies. Infos Socio-Economic Issues, 4: 1–4. Search in Google Scholar

GUS – Central Statistical Office (2022). Statistical Yearbook of agriculture. Available online: file:///C:/Users/user/Downloads/rocznik_statystyczny_rolnictwa_2022.pdf. Search in Google Scholar

Hermansen J., Badsberg J., Kristensen T., Gundersen V. (2005). Major and trace elements in organically or conventionally produced milk. J. Dairy Res., 72: 362–368. Search in Google Scholar

IJHARS – Agricultural and Food Quality Inspection (2021). https://www.gov.pl/web/ijhars/raport-o-stanie-rolnictwa-ekologicznego-w-polsce. Search in Google Scholar

IJHARS – Agricultural and Food Quality Inspection (2023). Data on organic farming. https://www.gov.pl/web/ijhars/dane-o-rolnictwie-ekologicznym Search in Google Scholar

Jõudu I., Henno M., Varv S., Kaart T., Kart O., Kalamees K. (2007). Milk protein genotypes and milk coagulation properties of Estonian native cattle. Agric. Food Sci., 16: 222–231. Search in Google Scholar

Jóźwik A., Strzałkowska N., Bagnicka E., Grzybek W., Krzyżewski J., Poławska E., Kołataj A., Horbańczuk J.O. (2012). Relationship between milk yield, stage of lactation, and some blood serum metabolic parameters of dairy cows. Czech J. Anim. Sci., 57: 353–360. Search in Google Scholar

Kao P.T., Darch T., McGrath S.P., Kendall N.R., Buss H.L., Warren H., Lee M.R.F. (2020). Chapter Four – Factors influencing elemental micronutrient supply from pasture systems for grazing ruminants. Sparks, D.L. (Ed.) Advances in Agronomy, Academic Press, 64: 161–229. Search in Google Scholar

Karbivska U., Kurgak V., Gamayunova V., Butenko A., Malynka L., Kovalenko I., Onychko V., Masyk I., Chyrva A., Zakharchenko E., Tkachenko O., Pshychenko O. (2020). Productivity and quality of diverse ripe pasture grass fodder depends on the method of soil cultivation. Acta Agrobotanica, 73. Search in Google Scholar

Koperska N., Kędzierska-Matysek M., Litwińczuk Z., Wójcik-Saganek A. (2013). Correlation between the content of macro-and microelements in milk obtained from organic and conventional farms (in Polish). In Conference materials of XVI Lublin Scientific Magnesology Conference – Chemical elements and health. 25 may 2013, Lublin, Poland, 64. Search in Google Scholar

Kouřimská L., Legarová V., Panovská Z., Pánek J. (2014). Quality of cows’ milk from organic and conventional farming. Czech J. Food Sci., 32: 398–405. Search in Google Scholar

Křížová L., Hanuš O., Hadrová S., Kučera J., Samková E., Roubal P., Veselý A. (2014). Composition, physical and technological properties of raw milk as affected by cattle breed, season and type of diet. Ann. Anim. Sci., 14: 721–736. Search in Google Scholar

Król J., Litwinczuk Z., Litwińczuk A., Brodziak A. (2008). Content of protein and its fractions in milk of Simmental cows with regard to rearing technology. Ann. Anim. Sci., 1: 57–61. Search in Google Scholar

Król J., Brodziak A., Wolanciuk A., Wójcik M. (2010). Elements’ content in milk of Simmental cows depending on feeding system (in Polish). Anim. Sci Genetics, 6: 321–328. Search in Google Scholar

Król J., Brodziak A., Topyła B. (2016). The nutritional value of the milk of Simmental cows in relation to the season and production system (in Polish). Anim. Prod. Review, 6: 20–24. Search in Google Scholar

Kučević D., Trivunović S., Bogdanović V., Čobanović K., Janković D., Stanojević D. (2016). Composition of raw milk from conventional and organic dairy farming. Biotechnol. Anim. Husb. 32: 133–143. Search in Google Scholar

Kuczyńska B., Puppel K. (2010). Organic milk – irreplaceable source of bioactive components (in Polish). Pol. Dairy J., 9: 4–9. Search in Google Scholar

Kuczyńska B. (2011). Bioactive ingredients and technological parameters of milk produced on organic and conventional farms. In Scientific Dissertations and Monographs. SGGW Publishing House: Warsaw, Poland. Search in Google Scholar

Kuczyńska B., Puppel K., Metera E., Gołębiewski M., Sakowski T., Słoniewski K. (2012). Differences in whey proteins content between cow’s milk collected in late pasture and early indoor feeding season from conventional and organic farms in Poland. J. Sci. Food Agric., 92: 2899–2904. Search in Google Scholar

Kukułowicz, A. (2018). Comparison of microbiological quality of milk products from organic and conventional production. Rocz. Nauk. Stow. Ekon. Rol., XX, 147–153. Search in Google Scholar

Litwińczuk Z., Barłowska J., Chabuz W., Brodziak A. (2012). The nutritional value and technological suitability of milk from cows of 3 Polish breeds included in the programme of genetic resources conservation. Ann. Anim. Sci., 12: 423–432. Search in Google Scholar

Litwińczuk Z., Barłowska J., Król J., Brodziak A., Matwijczuk A., Kowal M. (2015). Chemical composition and technological suitability of milk with regard to the feeding system of cows (in Polish). Med. Wet., 71: 231–235. Search in Google Scholar

Litwińczuk Z., Koperska N., Chabuz W., Kędzierska-Matysek M. (2018). Basic chemical composition and mineral content of the milk of cows of various breeds raised on organic farms and on traditional farms using intensive (PMR) and traditional feeding systems. Med. Wet., 74: 309–313. Search in Google Scholar

Mackle T.R., Bryant A.M., Petch S.F., Hooper, R.J., Auldist M.J. (1999). Variation in the composition of milk protein from pasturefed dairy cows in late lactation and the effect of grain and silage supplementation. New Zealand J. Agric. Res., 42: 147–154. Search in Google Scholar

Manuelian C.L., Vigolo V., Burbi S., Righi F., Simoni M., De Marchi M. (2022). Detailed comparison between organic and conventional milk from Holstein-Friesian dairy herds in Italy. J. Dairy Sci., 105: 5561–5572. Search in Google Scholar

Metera E., Sakowski T., Słoniewski K., Rembiałkowska E., Kuczyńska B. (2010). Effect of the production system on the content of bioactive substances in cow's milk – literature review. Part 2 (in Polish). Przegl. Hod., 78: 7–14. Search in Google Scholar

Migdał W., Migdał Ł. (2021). Farm-To-Table – Consumer requirements on farmers (in Polish). Żywn. Nauk. Technol. J., 129: 24–46. Search in Google Scholar

MRiRW (2023). Available online: https://www.gov.pl/web/rolnictwo/plan-strategiczny-dlawspolnej-polityki-rolnej-na-lata--2023-2027. Search in Google Scholar

PN-EN 13804-2013-06. Foodstuffs – Determination of trace elements and their chemical forms – General notes and specific requirements. Search in Google Scholar

PN-EN 14084:2004. Foodstuffs – Determination of trace elements – Determination of lithium, cadmium, zinc, copper and iron by atomic absorption spectrometry after microwave mineralization. Search in Google Scholar

PN–EN 15505:2009. Foodstuffs – Determination of trace elements – Determination of sodium and magnesium by flame atomic absorption spectrometry (AAS) after microwave mineralization.PN-EN ISO 12966-1:2015-01. Animal and vegetable fats and oils – Gas chromatography of fatty acid methyl esters – Part 1: Guidelines on modern gas chromatography of fatty acid methyl esters. Search in Google Scholar

PN-EN ISO 1736 (2010). Dried milk and dried milk products — Determination of fat content — Gravimetric method (Reference method). Search in Google Scholar

PN-EN ISO 5508:1996. Animal and vegetable fats and oils – Analysis by gas chromatography of methyl esters of fatty acids. Search in Google Scholar

Popović-Vranješ A., Savić M., Pejanović R., Janović S., Krajinović G. (2011). The effect of organic milk production on certain milk quality parameters. Acta Veterinaria, 61: 415–421. Search in Google Scholar

Puppel K., Sakowski T., Kuczyńska B., Grodkowski G., Gołębiewski M., Barszczewski J., Wróbel B., Budziński A., Kapusta A., Balcerak M. (2017). Degrees of antioxidant protection: A 2-year study of the bioactive properties of organic milk in Poland. J. Food Sci., 82: 525–528. Search in Google Scholar

Qin N., Faludi G., Beauclercq S., Pitt J., Desnica N., Pétursdóttir Á., Newton E.E., Angelidis A., Givens I., Juniper D., Humphries D., Gunnlaugsdóttir H., Stergiadis S. (2021). Macromineral and trace element concentrations and their seasonal variation in milk from organic and conventional dairy herds. Food Chem., 359: 129865. Search in Google Scholar

Regulation (EU) 2018/848 of the European Parliament and of the Council of 30 May 2018 on organic production and labelling of organic products and repealing Council Regulation (EC) No 834/2007. Official Journal of the European Union, L 150. Search in Google Scholar

Rey-Crespo R., Miranda M., López-Alonso M. (2013). Essential trace and toxic element concentrations in organic and convential milk in NW Spain. Food Chem. Toxicol., 55: 513–518. Search in Google Scholar

Rodríguez-Bermúdez R., Marta Miranda M., Orjales I., Rey-Crespo F., Muñoz N., López-Alonso M. (2017). Holstein-Friesian milk performance in organic farming in North Spain: Comparison with other systems and breeds. Span. J. Agric. Res., 15, e0601: 1–10. Search in Google Scholar

Rodríguez-Bermúdez R., Miranda M., Baudracco J., Fouz R., Pereira V., López-Alonso M. (2019). Breeding for organic dairy farming: what types of cows are needed? J. Dairy Res., 86: 3–12. Search in Google Scholar

Rodríguez-Bermúdez R., Miranda M., Fouz R., Orjales I., Diéguez R.J., Minervino A.H.H., López-Alonso M. (2020). Breed performance in organic dairy farming in Northern Spain. Reprod. Domest. Anim., 5: 93–104. Search in Google Scholar

Roesch M., Doherr M.G., Bluma J.W. (2005). Performance of dairy cows on Swiss farms with organic and integrated production. J. Dairy Sci., 88: 2462–2475. Search in Google Scholar

Romero C., Perez-Andujar O., Jimenes S. (1996). Detection of cow’s milk in ewe’s or goat’s milk by HPLC. Chromatographia, 42: 181–184. Search in Google Scholar

Schwendel B.H., Wester T.J., Morel P.C.H., Deadman C., Shadbolt N.M., Otter D.E. (2014). Invited review: Organic and conventionally produced Milk – An evaluation of factors influencing milk composition. J. Diary Sci., 98: 721–746. Search in Google Scholar

Schwendel B.H., Morel P.C.H., Wester T.J., Tavendale M.H., Deadman C., Fong B., Shadbolt N.M., Thatcher A., Otter D.E. (2015). Fatty acid profile differs between organic and conventionally produced cow milk independent of season or milking time. J. Dairy Sci., 98: 1411–1425. Search in Google Scholar

SWP - Local Government of the Podkarpackie Voivodeship. 2020. Strategy for the development of the voivodeship Podkarpackie 2030. Rzeszów. Search in Google Scholar

Średnicka-Tober D., Barański M., Seal C.J., Sanderson R., Benbrook C., Steinshamn H., Gromadzka-Ostrowska J.,Rembiałkowska E., Skwarło-Sońta K., Eyre M., et al. (2016). Higher PUFA and n-3 PUFA conjugated linoleic acid, α-tocopherol and iron, but lower iodine and selenium concentrations in organic milk: A systematic literature review and meta– and redundancy analyses. Br. J. Nutr., 115: 1043–1060. Search in Google Scholar

St-Gelais D., Hache S. (2005). Effect of β-casein concentration in cheese milk on rennet coagulation properties, cheese composition and cheese ripening. Food Res. Int., 38: 523–531. Search in Google Scholar

Teter A., Kędzierska-Matysek M., Barłowska J., Król J., Brodziak A. (2020). Nutritional value and coagulation properties of milk from local cow breeds, including the selected macro-and micronutrients and trace elements. Mljekarstvo, 70: 210–220. Search in Google Scholar

Weerasingha V., Priyashantha H., Ranadheera C.S., Prasanna P., Silva P., Vidanarachchi J.K., Johansson M. (2020). Milk coagulation properties: A study on milk protein profile of native and improved cattle breeds/types in Sri Lanka. Dairy, 4: 710–721. Search in Google Scholar

Willer H., Schlatter B., Trávníček J, Kemper L., Lernoud J. (2020). The World of Organic Agriculture Statistics and Emerging Trends 2020. Organic World Congress, France. Search in Google Scholar

Winnicki S., Jugowar J.L., Nawrocki L., Kalika G., Rudowicz-Nawrocka J. (2012). TMR system of feeding dairy cows in terms of precision agriculture (in Polish). Probl. Inż. Rol., 1: 77–85. Search in Google Scholar

WPR (2023). Available online: https://www.consilium.europa.eu/pl/policies/cap-introduction/cap-future-2020-common-agricultural-policy-2023-2027/. Search in Google Scholar

Wrzaszcz W., Prandecki K. (2020). Agriculture and the European Green Deal (in Polish). Probl. Agric. Econ., 4: 365. Search in Google Scholar

Zagorska J. (2007). The evaluation of organic milk quality. Summary of doctoral thesis. Latvia University of Agriculture: Latvia. Search in Google Scholar

Zamberlin Š., Antunac N., Havranek J., Samaržija D. (2012). Mineral elements in milk and dairy products. Mljekarstvo, 62: 111–125. Search in Google Scholar

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