A review of extended lactation in dairy cows managed in high-input and pasture-based farming systems
Kerst Stelwagen A * , Ina (J. B.) Pinxterhuis B , S. Jane Lacy-Hulbert C and Claire V. C. Phyn CA
B
C
Abstract
Traditionally the lactation cycle of a dairy cow is based around a 12-month calving interval, allowing for 10 months of lactation, followed by a 2-month dry period. This means that the cow has to conceive within 2–3 months after calving, when she is also at peak lactation and metabolically is in a negative energy balance. Such challenging physiological conditions make it challenging for the cow to conceive at this time and many modern high-producing cows fail to get pregnant within the constraints of a 12-month calving interval. In addition, many cows still produce at a high level at drying-off time, increasing the risk of intramammary infections. Therefore, delaying conception past peak production and, as a result, extending the lactation beyond 10 months may increasingly be necessary. Additionally, extended lactation (EL) may offer other advantages such as fewer calves being born and thus fewer ‘surplus’ calves needing to be culled at a young age, fewer health and welfare issues and improved environmental outcomes (i.e. less greenhouse-gas emission; less antibiotic usage) during the lifetime of the animal. Extending lactation is a straight forward management practice in high-input dairy systems where a consistent supply of feed supplements is readily available, but may be more challenging to implement in low(er)-input pasture-based systems. The latter are much more seasonal, with a 12-month calving interval allowing pasture growth and quality to match the cow’s nutritional demands; cows calve in spring when high-quality pasture is abundant and are dried-off during winter when pasture growth is more limited. In this review, we explored the impact of EL in both high-input systems and pasture-based systems. It covers the effects of EL on milk production, composition and processing, as well as on reproductive performance, health and welfare, and environmental and economic outcomes.
Keywords: dairy cow, economics, environmental impact, extended lactation, health and welfare, milk composition, milk production, nutrition, pasture, reproduction.
References
Abdelsayed M, Thomson PC, Raadsma HW (2015) A review of the genetic and non-genetic factors affecting extended lactation in pasture-based dairy systems. Animal Production Science 55(8), 949-966.
| Crossref | Google Scholar |
Allore HG, Erb HN (2000) Simulated effects on dairy cattle health of extending the voluntary waiting period with recombinant bovine somatotropin. Preventive Veterinary Medicine 46, 29-50.
| Crossref | Google Scholar | PubMed |
Arbel R, Bigun Y, Ezra E, Sturman H, Hojman D (2001) The effect of extended calving intervals in high lactating cows on milk production and profitability. Journal of Dairy Science 84, 600-608.
| Crossref | Google Scholar | PubMed |
Auldist MJ, Walsh BJ, Thomson NA (1998) Seasonal and lactational influences on bovine milk composition in New Zealand. Journal of Dairy Research 65(3), 401-411.
| Crossref | Google Scholar | PubMed |
Auldist MJ, O’Brien G, Cole D, Macmillan KL, Grainger C (2007) Effects of varying lactation length on milk production capacity of cows in pasture-based dairying systems. Journal of Dairy Science 90(7), 3234-3241.
| Crossref | Google Scholar | PubMed |
Auldist MJ, Grainger C, Houlihan AV, Mayes JJ, Williams RPW (2010) Composition, coagulation properties, and cheesemaking potential of milk from cows undergoing extended lactations in a pasture-based dairying system. Journal of Dairy Science 93, 1401-1411.
| Crossref | Google Scholar | PubMed |
Auldist MJ, Grainger C, Macmillan KL, Marett LC, Hannah M, Leury BJ, Wales WJ (2011) Feed conversion efficiency and marginal milk production responses of pasture-fed dairy cows offered supplementary grain during an extended lactation. Animal Production Science 51(3), 204-209.
| Crossref | Google Scholar |
Bertilsson J, Berglund B, Ratnayake G, Svennersten-Sjaunja K, Wiktorsson H (1997) Optimising lactation cycles for the high-yielding dairy cow. A European perspective. Livestock Production Science 50(1–2), 5-13.
| Crossref | Google Scholar |
Bolton SE, von Keyserlingk MAG (2021) The dispensable surplus dairy calf: is this issue a ‘wicked problem’ and where do we go from here? Frontiers in Veterinary Science 8, 660934.
| Crossref | Google Scholar |
Borman JM, Macmillan KL, Fahey J (2004) The potential for extended lactations in Victorian dairying: a review. Australian Journal of Experimental Agriculture 44(6), 507-519.
| Crossref | Google Scholar |
Browne NA, Behrendt R, Kingwell RS, Eckard RJ (2014) Does producing more product over a lifetime reduce greenhouse gas emissions and increase profitability in dairy and wool enterprises? Animal Production Science 55(1), 49-55.
| Crossref | Google Scholar |
Burgers EEA, Kok A, Goselink RMA, Hogeveen H, Kemp B, van Knegsel ATM (2021a) Effects of extended voluntary waiting period from calving until first insemination on body condition, milk yield, and lactation persistency. Journal of Dairy Science 104(7), 8009-8022.
| Crossref | Google Scholar | PubMed |
Burgers EEA, Kok A, Goselink RMA, Hogeveen H, Kemp B, van Knegsel ATM (2021b) Fertility and milk production on commercial dairy farms with customized lactation lengths. Journal of Dairy Science 104(1), 443-458.
| Crossref | Google Scholar | PubMed |
Burgers EEA, Kok A, Goselink RMA, Hogeveen H, Kemp B, van Knegsel ATM (2022) Revenues and costs of dairy cows with different voluntary waiting periods based on data of a randomized control trial. Journal of Dairy Science 105(5), 4171-4188.
| Crossref | Google Scholar | PubMed |
Burgers EEA, Goselink RMA, Bruckmaier RM, Gross JJ, Jorritsma R, Kemp B, Kok A, van Knegsel ATM (2023) Effect of voluntary waiting period on metabolism of dairy cows during different phases of the lactation. Journal of Animal Science 101, skad194.
| Crossref | Google Scholar |
Butler ST, Shalloo L, Murphy JJ (2010) Extended lactations in a seasonal-calving pastoral system of production to modulate the effects of reproductive failure. Journal of Dairy Science 93(3), 1283-1295.
| Crossref | Google Scholar | PubMed |
Cameron M, McKenna SL, MacDonald KA, Dohoo IR, Roy JP, Keefe GP (2014) Evaluation of selective dry cow treatment following on-farm culture: risk of postcalving intramammary infection and clinical mastitis in the subsequent lactation. Journal of Dairy Science 97, 270-284.
| Crossref | Google Scholar | PubMed |
Capuco AV, Akers RM (1999) Mammary involution in dairy animals. Journal of Mammary Gland Biology and Neoplasia 4, 137-144.
| Crossref | Google Scholar | PubMed |
Capuco AV, Ellis S (2005) Bovine mammary progenitor cells: current concepts and future directions. Journal of Mammary Gland Biology and Neoplasia 10, 5-15.
| Crossref | Google Scholar | PubMed |
Chikazhe TL, Mashlan KA, Beukes PC, Glassey CB, Haultain J, Neal MB (2017) The implications of winter milk premiums for sustainable profitability of dairy systems. Journal of New Zealand Grasslands 79, 49-53.
| Crossref | Google Scholar |
Clasen JB, Lehmann JO, Thomasen JR, Østergaard S, Kargo M (2019) Combining extended lactation with sexed semen in a dairy cattle herd: effect on genetic and total economic return. Livestock Science 223, 176-183.
| Crossref | Google Scholar |
Creutzinger K, Pempek J, Habing G, Proudfoot K, Locke S, Wilson D, Renaud D (2021) Perspectives on the management of surplus dairy calves in the United States and Canada. Frontiers in Veterinary Science 8, 661453.
| Crossref | Google Scholar |
Dahl GE, Buchanan BA, Tucker HA (2000) Photoperiodic effects on dairy cattle: a review. Journal of Dairy Science 83, 885-893.
| Crossref | Google Scholar | PubMed |
Dalcq A-C, Beckers Y, Mayeres P, Reding E, Wyzen B, Colinet F, Delhez P, Soyeurt H (2018) The feeding system impacts relationships between calving interval and economic results of dairy farms. Animal 12(8), 1662-1671.
| Crossref | Google Scholar | PubMed |
Darwash AO, Lamming GE, Woolliams JA (1997) Estimation of genetic variation in the interval from calving to postpartum ovulation of dairy cows. Journal of Dairy Science 80, 1227-1234.
| Crossref | Google Scholar | PubMed |
Delany KK, Macmillan KL, Grainger C, Thomson PC, Blache D, Nicholas KR, Auldist MJ (2010) Blood plasma concentrations of metabolic hormones and glucose during extended lactation in grazing cows or cows fed a total mixed ration. Journal of Dairy Science 93(12), 5913-5920.
| Crossref | Google Scholar | PubMed |
Edvardsson Rasmussen A, Båge R, Holtenius K, Strandberg E, von Brömssen C, Åkerlind M, Kronqvist C (2023a) A randomized study on the effect of an extended voluntary waiting period in primiparous dairy cows on fertility, health, and culling during first and second lactation. Journal of Dairy Science 106(12), 8897-8909.
| Crossref | Google Scholar | PubMed |
Edvardsson Rasmussen A, Holtenius K, Båge R, Strandberg E, Åkerlind M, Kronqvist C (2023b) A randomized study on the effect of extended voluntary waiting period in primiparous dairy cows on milk yield during first and second lactation. Journal of Dairy Science 106(4), 2510-2518.
| Crossref | Google Scholar | PubMed |
Edwards JP, Cuthbert S, Pinxterhuis JB, McDermott A (2021) The fate of calves born on New Zealand dairy farms and dairy farmer attitudes towards producing dairy-beef calves. New Zealand Journal of Animal Science and Production 81, 179-185.
| Google Scholar |
Fleming A, Schenkel FS, Chen J, Malchiodi F, Ali RA, Mallard B, Sargolzaei M, Corredig M, Miglior F (2017) Variation in fat globule size in bovine milk and its prediction using mid-infrared spectroscopy. Journal of Dairy Science 100(3), 1640-1649.
| Crossref | Google Scholar | PubMed |
Gaillard C, Friggens NC, Taghipoor M, Weisbjerg MR, Lehmann JO, Sehested J (2016a) Effects of an individual weight-adjusted feeding strategy in early lactation on milk production of Holstein cows during extended lactation. Journal of Dairy Science 99(3), 2221-2236.
| Crossref | Google Scholar | PubMed |
Gaillard C, Vestergaard M, Weisbjerg MR, Sehested J (2016b) Effects of live weight adjusted feeding strategy on plasma indicators of energy balance in Holstein cows managed for extended lactation. Animal 10(4), 633-642.
| Crossref | Google Scholar | PubMed |
Gaillard C, Martin O, Blavy P, Friggens NC, Sehested J, Phuong HN (2016c) Prediction of the lifetime productive and reproductive performance of Holstein cows managed for different lactation durations, using a model of lifetime nutrient partitioning. Journal of Dairy Science 99(11), 9126-9135.
| Crossref | Google Scholar | PubMed |
Gill M, Smith P, Wilkinson JM (2010) Mitigating climate change: the role of domestic livestock. Animal 4(3), 323-333.
| Crossref | Google Scholar | PubMed |
Grainger C, Auldist MJ, O’Brien G, Macmillan KL, Culley C (2009) Effect of type of diet and energy intake on milk production of Holstein-Friesian cows with extended lactations. Journal of Dairy Science 92(4), 1479-1492.
| Crossref | Google Scholar | PubMed |
Groot MJ, Berendsen BJA, Cleton NB (2021) The next step to further decrease veterinary antibiotic applications: phytogenic alternatives and effective monitoring; the Dutch approach. Frontiers in Veterinary Science 8, 709750.
| Crossref | Google Scholar |
Haile-Mariam M, Goddard ME (2008) Genetic and phenotypic parameters of lactations longer than 305 days (extended lactations). Animal 2(3), 325-335.
| Crossref | Google Scholar | PubMed |
Hristov AN, Ott T, Tricarico J, Rotz A, Waghorn G, Adesogan A, Dijkstra J, Montes F, Oh J, Kebreab E, Oosting SJ, Gerber PJ, Henderson B, Makkar HPS, Firkins JL (2013) SPECIAL TOPICS – Mitigation of methane and nitrous oxide emissions from animal operations: III. A review of animal management mitigation options. Journal of Animal Science 91(11), 5095-5113.
| Crossref | Google Scholar | PubMed |
Inchaisri C, Jorritsma R, Vos PLAM, van der Weijden GC, Hogeveen H (2011) Analysis of the economically optimal voluntary waiting period for first insemination. Journal of Dairy Science 94(8), 3811-3823.
| Crossref | Google Scholar | PubMed |
Ingvartsen KL (2006) Feeding- and management-related diseases in the transition cow: physiological adaptations around calving and strategies to reduce feeding-related diseases. Animal Feed Science and Technology 126(3–4), 175-213.
| Crossref | Google Scholar |
Jarman JWM, Kay JK, Neal M, Donaghy DJ, Tozer P (2020) Implications of using an extended lactation to change from a spring-calving to an autumncalving farm system in South Taranaki. New Zealand Journal of Animal Science and Production 80, 143-149.
| Google Scholar |
Kadokawa H, Martin GB (2006) A new perspective on management of reproduction in dairy cows: the need for detailed metabolic information, an improved selection index and extended lactation. Journal of Reproduction and Development 52, 161-168.
| Crossref | Google Scholar | PubMed |
Kay JK, Aspin PW, Phyn CVC, Roche JR, Kolver ES (2007) Production and physiological indicators to select cows suitable for extended lactations. Proceedings of the New Zealand Society of Animal Production 67, 315-319.
| Google Scholar |
Kay JK, Phyn CVC, Roche JR, Kolver ES (2009) Extending lactation in pasture-based dairy cows: II. Effect of genetic strain and diet on plasma hormone and metabolite concentrations. Journal of Dairy Science 92(8), 3704-3713.
| Crossref | Google Scholar | PubMed |
Kok A, van Middelaar CE, Mostert PF, van Knegsel ATM, Kemp B, de Boer IJM, Hogeveen H (2017) Effects of dry period length on production, cash flows and greenhouse gas emissions of the dairy herd: a dynamic stochastic simulation model. PLoS ONE 12(10), e0187101.
| Crossref | Google Scholar | PubMed |
Kok A, Lehmann JO, Kemp B, Hogeveen H, van Middelaar CE, de Boer IJM, van Knegsel ATM (2019) Production, partial cash flows and greenhouse gas emissions of simulated dairy herds with extended lactations. Animal 13(5), 1074-1083.
| Crossref | Google Scholar | PubMed |
Kolver ES, Roche JR, Burke CR, Kay JK, Aspin PW (2007) Extending lactation in pasture-based dairy cows: I. Genotype and diet effect on milk and reproduction. Journal of Dairy Science 90(12), 5518-5530.
| Crossref | Google Scholar | PubMed |
Lacy-Hulbert SJ, Summers EL, Williamson JH, Aspin PW, Kolver ES (2006) Prevalence of mastitis for cows of different genotypes milked for two consecutive seasons. Proceedings of the New Zealand Society of Animal Production 66, 236-240.
| Google Scholar |
Laevens H, Deluyker H, Schukken YH, De Meulemeester L, Vandermeersch R, De Muêlenaere E, De Kruif A (1997) Influence of parity and stage of lactation on the somatic cell count in bacteriologically negative dairy cows. Journal of Dairy Science 80, 3219-3226.
| Crossref | Google Scholar | PubMed |
Larsson B, Berglund B (2000) Reproductive performance in cows with extended calving interval. Reproduction in Domestic Animals 35(6), 277-279.
| Crossref | Google Scholar |
Leblanc S (2010) Monitoring metabolic health of dairy cattle in the transition period. Journal of Reproduction and Development 56(Suppl.), S29-S35.
| Crossref | Google Scholar |
Lehmann JO, Mogensen L, Kristensen T (2014) Extended lactations may improve cow health, productivity and reduce greenhouse gas emissions from organic dairy production. Organic Agriculture 4, 295-299.
| Crossref | Google Scholar |
Lehmann JO, Fadel JG, Mogensen L, Kristensen T, Gaillard C, Kebreab E (2016) Effect of calving interval and parity on milk yield per feeding day in Danish commercial dairy herds. Journal of Dairy Science 99(1), 621-633.
| Crossref | Google Scholar | PubMed |
Lehmann JO, Mogensen L, Kristensen T (2017) Early lactation production, health, and welfare characteristics of cows selected for extended lactation. Journal of Dairy Science 100, 1487-1501.
| Crossref | Google Scholar | PubMed |
Lehmann JO, Mogensen L, Kristensen T (2019) Extended lactations in dairy production: economic, productivity and climatic impact at herd, farm and sector level. Livestock Science 220, 100-110.
| Crossref | Google Scholar |
Lucey J (1996) Cheesemaking from grass based seasonal milk and problems associated with late-lactation milk. International Journal of Dairy Technology 49(2), 59-64.
| Crossref | Google Scholar |
Ma F, Xu S, Tang Z, Li Z, Zhang L (2021) Use of antimicrobials in food animals and impact of transmission of antimicrobial resistance on humans. Biosafety and Health 3, 32-38.
| Crossref | Google Scholar |
Ma J, Burgers EEA, Kok A, Goselink RMA, Lam TJGM, Kemp B, van Knegsel ATM (2022a) Consequences of extending the voluntary waiting period for insemination on reproductive performance in dairy cows. Animal Reproduction Science 244, 107046.
| Crossref | Google Scholar | PubMed |
Ma J, Kok A, Goselink RMA, Lam TJGM, Kemp B, van Knegsel ATM (2022b) Udder health of dairy cows with an extended voluntary waiting period from calving until the first insemination. Journal of Dairy Research 89(3), 271-278.
| Crossref | Google Scholar |
Maciel GM, Poulsen NA, Larsen MK, Kidmose U, Gaillard C, Sehested J, Larsen LB (2016) Good sensory quality and cheesemaking properties in milk from Holstein cows managed for an 18-month calving interval. Journal of Dairy Science 99(11), 8524-8536.
| Crossref | Google Scholar | PubMed |
Maciel GdM, Mogensen L, Lehmann JO, Kidmose U, Kristensen T, Larsen LB, Poulsen NA (2017) Impaired milk quality and cheese making properties is not a concern for managing cows for 15 or 18 months calving intervals. International Dairy Journal 70, 2-11.
| Crossref | Google Scholar |
Malcolm B (2005) Economics of extended lactations in dairying. Australian Farm Business Management Journal 2(2), 110-120.
| Crossref | Google Scholar |
Marett LC, Auldist MJ, Grainger C, Wales WJ, Blache D, Macmillan KL, Leury BJ (2011) Temporal changes in plasma concentrations of hormones and metabolites in pasture-fed dairy cows during extended lactation. Journal of Dairy Science 94, 5017-5026.
| Crossref | Google Scholar | PubMed |
Marett LC, Auldist MJ, Moate PJ, Wales WJ, Macmillan KL, Dunshea FR, Leury BJ (2015) Response of plasma glucose, insulin, and nonesterified fatty acids to intravenous glucose tolerance tests in dairy cows during a 670-day lactation. Journal of Dairy Science 98, 179-189.
| Crossref | Google Scholar | PubMed |
Marett LC, Auldist MJ, Wales WJ, Macmillan KL, Dunshea FR, Leury BJ (2017) Responses of plasma glucose and nonesterified fatty acids to intravenous insulin tolerance tests in dairy cows during a 670-day lactation. Journal of Dairy Science 100(4), 3272-3281.
| Crossref | Google Scholar | PubMed |
Marett LC, Auldist MJ, Wales WJ, Macmillan KL, Dunshea FR, Leury BJ (2018) Plasma glucose and nonesterified fatty acids response to epinephrine challenges in dairy cows during a 670-d lactation. Journal of Dairy Science 101(4), 3501-3513.
| Crossref | Google Scholar | PubMed |
Marett LC, Auldist MJ, Wales WJ, Macmillan KL, Dunshea FR, Leury BJ (2019) Responses to metabolic challenges in dairy cows with high or low milk yield during an extended lactation. Journal of Dairy Science 102, 4590-4605.
| Crossref | Google Scholar | PubMed |
Marshall BM, Levy SB (2011) Food animals and antimicrobials: impacts on human health. Clinical Microbiology Reviews 24(4), 718-733.
| Crossref | Google Scholar | PubMed |
Mellado M, Flores JM, de Santiago A, Veliz FG, Macías-Cruz U, Avendaño-Reyes L, García JE (2016) Extended lactation in high-yielding Holstein cows: characterization of milk yield and risk factors for lactations >450 days. Livestock Science 189, 50-55.
| Crossref | Google Scholar |
Mezzetti M, Cattaneo L, Passamonti MM, Lopreiato V, Minuti A, Trevisi E (2021) The transition period updated: a review of the new insights into the adaptation of dairy cows to the new lactation. Dairy 2(4), 617-636.
| Crossref | Google Scholar |
Nicholas GD, Auldist MJ, Molan PC, Stelwagen K, Prosser CG (2002) Effects of stage of lactation and time of year on plasmin-derived proteolytic activity in bovine milk in New Zealand. Journal of Dairy Research 69(4), 533-540.
| Crossref | Google Scholar | PubMed |
Niozas G, Tsousis G, Malesios C, Steinhöfel I, Boscos C, Bollwein H, Kaske M (2019a) Extended lactation in high-yielding dairy cows. II. Effects on milk production, udder health, and body measurements. Journal of Dairy Science 102, 811-823.
| Crossref | Google Scholar | PubMed |
Niozas G, Tsousis G, Steinhöfel I, Brozos C, Römer A, Wiedemann S, Bollwein H, Kaske M (2019b) Extended lactation in high-yielding dairy cows. I. Effects on reproductive measurements. Journal of Dairy Science 102, 799-810.
| Crossref | Google Scholar | PubMed |
O’Callaghan TF, Hennessy D, McAuliffe S, Kilcawley KN, O’Donovan M, Dillon P, Ross RP, Stanton C (2016) Effect of pasture versus indoor feeding systems on raw milk composition and quality over an entire lactation. Journal of Dairy Science 99(12), 9424-9440.
| Crossref | Google Scholar | PubMed |
Österman S, Bertilsson J (2003) Extended calving interval in combination with milking two or three times per day: effects on milk production and milk composition. Livestock Production Science 82(2–3), 139-149.
| Crossref | Google Scholar |
Österman S, Östensson K, Svennersten-Sjaunja K, Bertilsson J (2005) How does extended lactation in combination with different milking frequencies affect somatic cell counts in dairy cows? Livestock Production Science 96(2–3), 225-232.
| Crossref | Google Scholar |
Pan M, Chu LM (2017) Transfer of antibiotics from wastewater or animal manure to soil and edible crops. Environmental Pollution 231, 829-836.
| Crossref | Google Scholar | PubMed |
Phyn CVC, Clark C, Aspin PW, Kolver ES (2008) Effect of genotype and diet on feed conversion efficiency of dairy cows during a 600-day extended lactation. Proceedings of the New Zealand Society of Animal Production 68, 100-104.
| Google Scholar |
Placzek M, Christoph-Schulz I, Barth K (2021) Public attitude towards cow–calf separation and other common practices of calf rearing in dairy farming – a review. Organic Agriculture 11, 41-50.
| Crossref | Google Scholar |
Pryce JE, Royal MD, Garnsworthy PC, Mao IL (2004) Fertility in the high-producing dairy cow. Livestock Production Science 86(1–3), 125-135.
| Crossref | Google Scholar |
Pryce JE, Haile-Mariam M, Verbyla K, Bowman PJ, Goddard ME, Hayes BJ (2010) Genetic markers for lactation persistency in primiparous Australian dairy cows. Journal of Dairy Science 93, 2202-2214.
| Crossref | Google Scholar | PubMed |
Ratnayake DRTG, Berglund B, Bertilsson J, Forsberg M, Gustafsson H (1998) Fertility in dairy cows managed for calving intervals of 12, 15 or 18 months. Acta Veterinaria Scandinavica 39(2), 215-228.
| Crossref | Google Scholar | PubMed |
Rehn H, Berglund B, Emanuelson U, Tengroth G, Philipsson J (2000) Milk production in Swedish dairy cows managed for calving intervals of 12 and 15 months. Acta Agriculturae Scandinavica, Section A – Animal Science 50, 263-271.
| Crossref | Google Scholar |
Ritter C, Hötzel MJ, von Keyserlingk MAG (2022) Public attitudes toward different management scenarios for ‘surplus’ dairy calves. Journal of Dairy Science 105(7), 5909-5925.
| Crossref | Google Scholar | PubMed |
Rius AG, Phyn CVC, Kay JK, Morgan SR, Grala TM, Roche JR (2011) Brief communication: effect of milking frequency and concentrate supplementation on milk production during an extended lactation in grazing dairy cows. Proceedings of the New Zealand Society of Animal Production 71, 42-44.
| Google Scholar |
Rodríguez-Godina IJ, García JE, Mellado J, Morales-Cruz JL, Contreras V, Macías-Cruz U, Avendaño-Reyes L, Mellado M (2021) Permanence time in the herd and milk production of Holstein cows with up to five successive extended lactations. Tropical Animal Health and Production 53, 141.
| Crossref | Google Scholar |
Rotz CA, Zartman DL, Crandall KL (2005) Economic and environmental feasibility of a perennial cow dairy farm. Journal of Dairy Science 88(8), 3009-3019.
| Crossref | Google Scholar | PubMed |
Sehested J, Gaillard C, Lehmann JO, Maciel GM, Vestergaard M, Weisbjerg MR, Mogensen L, Larsen LB, Poulsen NA, Kristensen T (2019) Review: extended lactation in dairy cattle. Animal 13, s65-s74.
| Crossref | Google Scholar | PubMed |
Silanikove N, Merin U, Shapiro F, Leitner G (2013) Early mammary gland metabolic and immune responses during natural-like and forceful drying-off in high-yielding dairy cows. Journal of Dairy Science 96(10), 6400-6411.
| Crossref | Google Scholar | PubMed |
Sirovica LV, Ritter C, Hendricks J, Weary DM, Gulati S, von Keyserlingk MAG (2022) Public attitude toward and perceptions of dairy cattle welfare in cow-calf management systems differing in type of social and maternal contact. Journal of Dairy Science 105(4), 3248-3268.
| Crossref | Google Scholar | PubMed |
Sorensen A, Knight CH (2002) Endocrine profiles of cows undergoing extended lactation in relation to the control of lactation persistency. Domestic Animal Endocrinology 23(1–2), 111-123.
| Crossref | Google Scholar | PubMed |
Sorensen A, Muir DD, Knight CH (2008) Extended lactation in dairy cows: effects of milking frequency, calving season and nutrition on lactation persistency and milk quality. Journal of Dairy Research 75, 90-97.
| Crossref | Google Scholar | PubMed |
Stelwagen K (2001) Effect of milking frequency on mammary functioning and shape of the lactation curve. Journal of Dairy Science 84(Suppl. 1), E204-E211.
| Crossref | Google Scholar |
Stelwagen K, Singh K (2014) The role of tight junctions in mammary gland function. Journal of Mammary Gland Biology and Neoplasia 19, 131-138.
| Crossref | Google Scholar | PubMed |
Truong T, Palmer M, Bansal N, Bhandari B (2016) Effect of milk fat globule size on functionalities and sensory qualities of dairy products. In ‘Effect of milk fat globule size on the physical functionality of dairy products’. SpringerBriefs in Food, Health, and Nutrition. pp. 47–67. (Springer: Cham, Switzerland)
Turner S-A, Phynn CVC, Kolver ES, Aspin PW, Lopez-Villalobos N (2008) Effect of genotype and concentrate supplementation on dairy product mix and the value of milk produced by grazing dairy cows during an extended lactation. Proceedings of the New Zealand Society of Animal Production 68, 79-83.
| Google Scholar |
van Amburgh ME, Galton DM, Bauman DE, Everett RW (1997) Management and economics of extended calving intervals with use of bovine somatotropin. Livestock Production Science 50(1–2), 15-28.
| Crossref | Google Scholar |
van Knegsel ATM, Burgers EEA, Ma J, Goselink RMA, Kok A (2022) Extending lactation length: consequences for cow, calf, and farmer. Journal of Animal Science 100(10), skac220.
| Crossref | Google Scholar |
Veerkamp RF, Oldenbroek JK, Van der Gaast HJ, Van der Werf JHJ (2000) Genetic correlation between days until start of luteal activity and milk yield, energy balance, and live weights. Journal of Dairy Science 83, 577-583.
| Crossref | Google Scholar | PubMed |
Vilar MJ, Rajala-Schultz PJ (2020) Dry-off and dairy cow udder health and welfare: effects of different milk cessation methods. The Veterinary Journal 262, 105503.
| Crossref | Google Scholar | PubMed |
Wall E, Coffey MP, Pollott GE (2012) The effect of lactation length on greenhouse gas emissions from the national dairy herd. Animal 6(11), 1857-1867.
| Crossref | Google Scholar | PubMed |
Walsh SW, Williams EJ, Evans ACO (2011) A review of the causes of poor fertility in high milk producing dairy cows. Animal Reproduction Science 123(3–4), 127-138.
| Crossref | Google Scholar | PubMed |
Williams SRO, Clarke T, Hannah MC, Marett LC, Moate PJ, Auldist MJ, Wales WJ (2013) Energy partitioning in herbage-fed dairy cows offered supplementary grain during an extended lactation. Journal of Dairy Science 96, 484-494.
| Crossref | Google Scholar | PubMed |