Leptin in Dairy Cows: Metabolic Adaptation, Reproductive Function, and Health Applications
Abstract
1. Introduction
1.1. Historical Background of Leptin
1.2. Leptin in Ruminant Physiology
1.3. Aim of the Review
2. Metabolic Pathways of Leptin
2.1. Leptin Synthesis, Receptor Isoforms and Signalling Pathways
2.2. Tissue Distribution of Leptin Receptors in Cattle
3. Leptin Production and Regulation
3.1. Sources of Leptin in Dairy Cattle
3.2. Nutritional and Hormonal Regulation of Leptin
3.3. Leptin and Milk Production
4. Leptin and the Hypothalamic–Pituitary–Gonadal Axis
4.1. Central Leptin Signalling and GnRH/Gonadotropins Regulation
4.2. Relationship with Ovarian Steroids
5. Leptin in Ovarian and Testicular Function
5.1. Ovarian Leptin Receptors and Steroidogenesis
5.2. Leptin in Folliculogenesis and Ovulation
5.3. Leptin, Oocyte Competence and Early Embryonic Development
5.4. Leptin in Testicular Function
6. Leptin and Uterine Function
6.1. Impact on Uterine Receptivity and Embryo Development
6.2. Immune Modulation in the Reproductive Tract
7. Metabolic Status, Peripartum Period, and Fertility
7.1. Relationship Between Leptin, Energy Balance, and Fertility
7.2. Leptin and the Peripartum Period
7.3. Leptin and Peripartum Ketosis
8. Leptin in the Metabolic Adaptation of Early Lactation
9. Leptin, Growth, and Puberty
10. Birth Weight, Placental Leptin, and Intrauterine Growth
11. Genetic Selection Based on Leptin Polymorphisms and Feed Efficiency
12. Leptin as a Biomarker in Dairy Practice
13. Conclusions and Future Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AA | Amino acids |
| α-MSH | α-Melanocyte-stimulating hormone |
| ADRB3 | β-3 adrenergic receptor |
| AGP | Alpha-1-acid glycoprotein |
| BCS | Body condition score |
| BHB | β-Hydroxybutyrate |
| CART | Cocaine and amphetamine-regulated transcript |
| DMI | Dry matter intake |
| FSH | Follicle-stimulating hormone |
| GABA | Gamma-aminobutyric acid |
| GH | Growth hormone |
| GnRH | Gonadotropin releasing hormone |
| HPG axis | Hypothalamic–pituitary–gonadal axis |
| IGF-1 | Insulin-like growth factor-1 |
| JAK | Janus kinase |
| LEP | Leptin |
| LH | Luteinizing hormone |
| MAPK | Mitogen-activated protein kinase |
| NEB | Negative energy balance |
| NEFA | Non-esterified fatty acids |
| NPY | Neuropeptide Y |
| ObR | Leptin receptor |
| PI3K | Phosphatidylinositol-3-kinase |
| POMC | Proopiomelanocortin |
| QTL | Quantitative trait locus |
| RFI | Residual feed intake |
| SNP | Single nucleotide polymorphism |
| SOCS3 | Suppressor of cytokine signalling 3 |
| STAT3 | Signal transducer and activator of transcription 3 |
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| Target Tissue | Specific Effects of Leptin | Biological Pathway | Clinical Significance | References |
|---|---|---|---|---|
| Hypothalamus | Regulates the release of GnRH Transmits satiety signals via NPY, POMC, and GABA mediation Acts on ventromedial and arcuate nuclei | JAK2-STAT3 MAPK PI3K | Critical link between energy balance and reproductive health Regulates puberty onset and LH pulsatility | [67,69,70,71,72,73,74,75,76,77,78,79,80,81,82,83] |
| Anterior Pituitary | Enhances basal and GnRH-mediated release of LH Regulates gonadotropin secretion | JAK-STAT MAPK | Impacts fertility during nutritional stress Prevents reduction in LH pulse frequency during fasting | [56,57,58,71,72,73,74,84] |
| Ovarian follicles: Granulosa and Theca cells | Modulates steroidogenesis (estrogen and progesterone production) Influences folliculogenesis, oocyte maturation, and ovulation | IGF-1 | Low levels associated with postpartum anestrus and reproductive failure High levels may inhibit steroidogenesis | [17,35,85,86,87,88] |
| Uterus | Modulates immune responses and uterine receptivity Impacts embryo development and implantation | Inflammatory cytokine signalling | Correlation between leptin levels and disease severity | [89,90,91,92] |
| Placenta | Promotes trophoblast cell migration and proliferation Inhibits apoptosis Facilitates placenta formation | JAK-STAT | Positive correlation with high-birth-weight neonates Prevents intrauterine growth retardation Essential for fetomaternal communication | [93,94,95,96,97,98,99,100,101,102,103,104,105,106] |
| Mammary Gland | Upregulates the lactogenic effect of prolactin Expression found in mammary parenchyma | Lactogenic signalling upregulation | Potential impact on milk production and composition during early lactation | [18,60,107] |
| Adipose Tissue | Inhibits fat synthesis Promotes triglyceride breakdown Reduces insulin sensitivity in adipocytes | Autocrine/Paracrine signalling | Regulation of lipid metabolism | [16,21,22,24,51,88,91] |
| Liver | Modulates insulin-mediated glucose clearance Exhibits the highest expression of total leptin receptors | JAK2-STAT3 | Involved in glucose conservation during the transition from pregnancy to lactation | [4,6,7,13,16,46,47,49,95,107,108,109,110,111,112,113] |
| Skeletal Muscle | Increases glucose uptake Determinant of energy expenditure and thyroid hormone-mediated thermogenesis | Autonomic nervous system activation | Effector tissue for energy sparing in transitioning dairy cows Impacts metabolic adaptation during weight loss | [62,64,106] |
| Domain | Leptin Signal | Key Message | Practical Implication | References |
|---|---|---|---|---|
| Transition energy balance | Circulating leptin reflects body fat reserves and changes in energy balance during the transition period. | Leptin serves as an indicator of metabolic adaptation around calving. | Enables early identification of metabolically fragile cows in late gestation and early lactation. | [91] |
| Periparturient ketosis | Lower or sharply declining leptin is associated with elevated NEFA and ketone bodies in cows that develop ketosis. | Low leptin signals, severe NEB and intense lipid mobilisation. | Inclusion of leptin in metabolic screening may improve early detection of cows at risk of ketosis. | [136,137,138] |
| Postpartum fertility | Reduced postpartum leptin is linked to ovarian inactivity, delayed resumption of cyclicity, and longer interval to first oestrus. | An unfavourable leptin profile indicates impaired coupling between metabolic status and reproductive function. | Leptin measurements can help flag cows at risk of subfertility during the transition period. | [44,91,130] |
| Uterine inflammatory disease | Higher leptin concentrations are reported in cows with metritis, endometritis, or pyometra and correlate with disease severity. | In this context, leptin behaves as an immunometabolic marker of uterine inflammation rather than merely an energy-status marker. | Supports diagnosis and monitoring of uterine disease when interpreted within multimarker panels. | [52,124,125,129] |
| Biomarker strategy | Leptin shows good performance but is insufficient as a standalone diagnostic test. | Its clinical value increases when combined with NEFA, BHB, insulin, inflammatory markers, and other adipokines. | Recommended use is as part of integrated biomarker panels for precision management at cow and herd level. | [89,90,91,124,125] |
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Martinez-Barbitta, M.; Biagini, A.; Costanzi, E.; Guelfi, G.; Maranesi, M.; García-Díez, J.; Saraiva, C.; Karama, M.; El-Ashram, S.; Al-Olayan, E.; et al. Leptin in Dairy Cows: Metabolic Adaptation, Reproductive Function, and Health Applications. Life 2026, 16, 987. https://doi.org/10.3390/life16060987
Martinez-Barbitta M, Biagini A, Costanzi E, Guelfi G, Maranesi M, García-Díez J, Saraiva C, Karama M, El-Ashram S, Al-Olayan E, et al. Leptin in Dairy Cows: Metabolic Adaptation, Reproductive Function, and Health Applications. Life. 2026; 16(6):987. https://doi.org/10.3390/life16060987
Chicago/Turabian StyleMartinez-Barbitta, Marcelo, Andrea Biagini, Egidia Costanzi, Gabriella Guelfi, Margherita Maranesi, Juan García-Díez, Cristina Saraiva, Musafiri Karama, Saeed El-Ashram, Ebtesam Al-Olayan, and et al. 2026. "Leptin in Dairy Cows: Metabolic Adaptation, Reproductive Function, and Health Applications" Life 16, no. 6: 987. https://doi.org/10.3390/life16060987
APA StyleMartinez-Barbitta, M., Biagini, A., Costanzi, E., Guelfi, G., Maranesi, M., García-Díez, J., Saraiva, C., Karama, M., El-Ashram, S., Al-Olayan, E., Cenci-Goga, B., & Zerani, M. (2026). Leptin in Dairy Cows: Metabolic Adaptation, Reproductive Function, and Health Applications. Life, 16(6), 987. https://doi.org/10.3390/life16060987

