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特邀综述:牛奶采集研究对生物学与挤奶技术之间最佳相互作用的贡献

INVITED REVIEW: Contribution of milk harvesting research to optimal interaction between biology and milking technology.

作者信息

Upton J, Bruckmaier R M, Mein G A, Reinemann D J, Wieland M, Paulrud C O, Baines J, Ohnstad I, Rasmussen M D

机构信息

Animal and Grassland Research and Innovation Centre, Teagasc Moorepark, Fermoy, Co. Cork, P61 P302, Ireland.

Vetsuisse Faculty, University of Bern, 3012 Bern, Switzerland.

出版信息

J Dairy Sci. 2025 Jul 31. doi: 10.3168/jds.2025-27010.

DOI:10.3168/jds.2025-27010
PMID:40752616
Abstract

The broad focus of this review is on milk harvesting in machine-milked herds. With particular emphasis on: (1) milk secretion and storage dynamics in the udder, (2) milk ejection, (3) milk flow profiles and their effect on milking efficiency, (5) immunological activity and milking efficiency, (5) milking machine aspects of milk removal, and (6) the future potential of milking technology. Machine milking has evolved from its early mechanical beginnings into a technologically advanced, data-driven process that must balance speed, chosen completeness, and gentleness on teat tissue to support efficient milk removal and optimal udder health. This review summarizes the current understanding of milk harvesting from a physiological, mechanical, and managerial perspective and outlines the key factors shaping its future development. Fundamentally, milk harvesting is built upon a biological sequence involving milk synthesis, ejection, and removal. Milk synthesis occurs at the alveolar level and is influenced by local quarter-specific physiology. Milk ejection is driven by the oxytocin-mediated contraction of myoepithelial cells, a process sensitive to the degree of udder filling, familiarity with the milking environment, and cow-operator interactions. Milk flow profiles, shaped by these biological processes, provide crucial insights into milking efficiency and udder health outcomes. At the machine level, key variables include milking vacuum, pulsation characteristics, liner properties, and teatcup removal strategies. Optimal settings for each of these parameters depend on dynamic interactions with cow physiology and milking stage. Recent research highlights the need to consider these factors not in isolation but as part of an integrated milking system, where vacuum, pulsation, liner design, and timing of teatcup removal interact to affect milking speed, teat condition, and udder health. Automation of milking systems and indeed automated milking systems have driven a shift toward individualized milking at the quarter level, enabling more precise control of extraction timing and flow rate. The integration of real-time sensor data, machine learning, and adaptive milking parameters represents a major step forward in the optimization of milking systems. In the near future, distinctions between automated milking systems and conventional systems will become increasingly blurred, as both adopt automation and intelligent controls tailored to individual cows and quarters. This review also explores the role of immunological activity in shaping milking efficiency. Elevated SCC has been associated with altered milk flow curves and decreased productivity. There is emerging evidence suggesting that modern selection and management strategies may reduce the historical link between fast milking and mastitis risk. This relationship remains complex and context dependent. The detection and management of abnormal milk (supported by more advanced inline sensor systems) is expected to become a cornerstone of future milking technology. Looking forward, the drivers of change in milk harvesting will include labor availability, economic pressures, environmental concerns, animal health, and consumer expectations. A new era of biologically aware, data-informed, and precision-engineered milking systems is emerging. These systems will support the gentle, efficient removal of milk to a user-defined end point, tailored to each animal and each milking event.

摘要

本综述的广泛关注点是机器挤奶牛群中的乳汁采集。特别强调以下方面:(1)乳房内乳汁分泌和储存动态;(2)乳汁排出;(3)乳汁流动曲线及其对挤奶效率的影响;(4)免疫活性与挤奶效率;(5)挤奶机的乳汁移除方面;(6)挤奶技术的未来潜力。机器挤奶已从早期的机械开端发展成为一个技术先进、数据驱动的过程,必须在速度、采奶完整性和对乳头组织的轻柔程度之间取得平衡,以支持高效的乳汁移除和乳房的最佳健康状态。本综述从生理、机械和管理角度总结了当前对乳汁采集的认识,并概述了塑造其未来发展的关键因素。从根本上说,乳汁采集基于一个涉及乳汁合成、排出和移除的生物学过程。乳汁合成发生在腺泡水平,并受局部特定乳腺区生理状况的影响。乳汁排出由催产素介导的肌上皮细胞收缩驱动,这一过程对乳房充盈程度、对挤奶环境的熟悉程度以及奶牛与操作人员的互动敏感。由这些生物学过程形成的乳汁流动曲线,为挤奶效率和乳房健康状况提供了关键见解。在机器层面,关键变量包括挤奶真空度、脉动特性、内衬特性和奶杯移除策略。这些参数的最佳设置取决于与奶牛生理和挤奶阶段的动态相互作用。最近的研究强调,不应孤立地考虑这些因素,而应将其视为集成挤奶系统的一部分,在该系统中,真空度、脉动、内衬设计和奶杯移除时间相互作用,影响挤奶速度、乳头状况和乳房健康。挤奶系统的自动化以及实际上的自动挤奶系统已推动向乳腺区层面的个性化挤奶转变,从而能够更精确地控制采奶时间和流速。实时传感器数据、机器学习和自适应挤奶参数的整合代表了挤奶系统优化方面的一大进步。在不久的将来,自动挤奶系统和传统系统之间的区别将越来越模糊,因为两者都采用针对个体奶牛和乳腺区量身定制的自动化和智能控制。本综述还探讨了免疫活性在塑造挤奶效率方面的作用。体细胞计数升高与乳汁流动曲线改变和生产力下降有关。新出现的证据表明,现代选育和管理策略可能会减少快速挤奶与乳腺炎风险之间的历史关联。这种关系仍然复杂且取决于具体情况。异常乳汁的检测和管理(由更先进的在线传感器系统支持)有望成为未来挤奶技术的基石。展望未来,乳汁采集变革的驱动因素将包括劳动力可用性、经济压力、环境问题、动物健康和消费者期望。一个具有生物学意识、数据驱动且经过精确设计的挤奶系统新时代正在兴起。这些系统将支持轻柔、高效地将乳汁采集至用户定义的终点,针对每头动物和每次挤奶事件进行量身定制。

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