Effect of Letrozole Administration on Reproductive Performance and Plasma Metabolites of Ewes During Estrus Synchronization Treatment
Abstract
1. Introduction
2. Materials and Methods
2.1. Institutional Review Board Statement
2.2. Experimental Time and Location
2.3. Animals and Management
2.4. Feeding Management
2.5. Experimental Design
Estrus Synchronization Treatment
2.6. Sample Collection and Measurements
2.6.1. Feed Sample
2.6.2. Plasma Sample
- GnRH: 15.62–1000 pg/mL
- FSH: 1.56–100 mIU/mL
- LH: 0.2–25 pg/mL
- E2: 2.35–150 pg/mL
- T: 1.715–1250 pg/mL
- P4: 17.15–12,500 pg/mL
2.6.3. Formulas for Reproductive Performance Parameters
2.7. Data Analysis
3. Results
3.1. Effect of LE on Plasma Reproductive Hormones in Turpan Black Ewes
3.2. Effect of LE Administration on Reproductive Performance Parameters in Turpan Black Ewes
3.3. Effect of Letrozole Administration on Plasma Differential Metabolites in Turpan Black Ewes
3.3.1. Partial Least Squares Discriminant Analysis (PLS-DA) Model and Permutation Verification
3.3.2. Screening and Analysis of Plasma Differential Metabolites
3.3.3. KEGG Enrichment Pathway Analysis of Plasma Differential Metabolites
3.3.4. Correlation Analysis Between Differential Metabolites and Reproductive Hormones
4. Discussion
5. Conclusions
6. Limitations
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ADF | Acid Detergent Fiber |
| BW | Body Weight |
| CP | Crude Protein |
| CIDR | Controlled Internal Drug Release |
| DM | Dry Matter |
| AI | Artificial insemination |
| E2 | Estradiol |
| ER | Estrogen receptors |
| FSH | Follicle-Stimulating Hormone |
| FDR | False discovery rate |
| GnRH | Gonadotropin-Releasing Hormone |
| HPO axis | Hypothalamic–pituitary–ovarian axis |
| LE | Letrozole |
| LH | Luteinizing Hormone |
| SEM | Standard error of the means |
| TMR | Total Mixed Ration |
| T | Testosterone |
| P4 | Progesterone |
References
- Ruozhanguoli, R. A Preliminary Study on Germplasm Characteristics of Turpan Black Sheep. Master’s Thesis, Xinjiang Agricultural University, Urumqi, China, 2013. [Google Scholar] [CrossRef]
- Hainimuguli, A. Protection and development strategies of Turpan black sheep breed. Chin. Anim. Husb. Vet. Med. 2008, 1, 95–96. [Google Scholar] [CrossRef]
- Qi, X.; Wang, Z.; Zhang, P. Turpan black sheep’s protection use of germplasm resource in Toksun County. Hans. J. Agric. Sci. 2015, 5, 96–100. [Google Scholar] [CrossRef]
- Abulaike, A.; Saimi, A.; Mailikere, W. Application of Efficient Breeding Technology for Turpan Black Sheep. Xinjiang Anim. Husb. 2015, 1, 51–52. [Google Scholar] [CrossRef]
- Xayalath, S.; Novotni-Danko, G.; Rátky, J. The Role of Estrous Synchronization and Artificial Insemination in Improving the Reproductive Performance of Moo Lath Gilts. Agriculture 2022, 12, 1549. [Google Scholar] [CrossRef]
- Romanski, P.A.; Shah, N.J.; Bortoletto, P.; Rosenwaks, Z.; Schattman, G. Effect of Follicle Size at Trigger in GnRH Antagonist Plus Letrozole IVF Cycles on Oocyte Quality Outcomes. Fertil. Steril. 2020, 114, 313–314. [Google Scholar] [CrossRef]
- Zwiefelhofer, E.M.; Lillico, W.; Adams, G.P. Development of a letrozole-based synchronization protocol for fixed-time artificial insemination in beef cattle. Anim. Reprod. Sci. 2022, 240, 106975. [Google Scholar] [CrossRef] [PubMed]
- Miller, R.A.K.; Pinheiro, M.G. Comparative Outcomes of Letrozole Versus Clomiphene Citrate for Ovulation Induction in Patients With PCOS: Systematic Review and Meta-Analysis. JBRA Assist. Reprod. 2025, 30, 146–159. [Google Scholar] [CrossRef] [PubMed]
- Turgut, A.O.; Koca, D. Serum Anti-Müllerian hormone levels during estrus and diestrus phases of the estrous cycle and its possible effect on fertility in cross-bred Hamdani sheep. Pak. Vet. J. 2024, 44, 134–138. [Google Scholar] [CrossRef] [PubMed]
- Rezaei, A.; Vaziry, A.; Farshad, A.; Farzinpour, A.; Rostamzadeh, J. Effects of letrozole administration on growth and reproductive performance in Markhoz goat bucklings. Theriogenology 2020, 147, 183–191. [Google Scholar] [CrossRef] [PubMed]
- GB/T 6435—2014; Determination of Moisture in Feedstuffs. Standards Press of China: Beijing, China, 2014.
- GB/T 6438—2025; Determination of Crude Ash in Feedstuffs. Standards Press of China: Beijing, China, 2025.
- AOAC International. AOAC Official Method 990.03: Crude Protein in Animal Feed, Combustion Method. In Official Methods of Analysis, 18th ed.; AOAC International: Gaithersburg, MD, USA, 2006. [Google Scholar]
- AOAC International. AOAC Official Method 968.08: Calcium in Feeds, o-Cresolphthalein Colorimetric Method. In Official Methods of Analysis, 18th ed.; AOAC International: Gaithersburg, MD, USA, 2005. [Google Scholar]
- AOAC International. AOAC Official Method 965.17: Phosphorus in Feeds, Ammonium Vanadate Colorimetric Method. In Official Methods of Analysis, 18th ed.; AOAC International: Gaithersburg, MD, USA, 2005. [Google Scholar]
- AOAC International. AOAC Official Method 2002.04: Amylase-Treated Neutral Detergent Fiber in Feeds. In Official Methods of Analysis, 18th ed.; AOAC International: Gaithersburg, MD, USA, 2006. [Google Scholar]
- AOAC International. AOAC Official Method 973.18: Acid Detergent Fiber and Lignin in Animal Feeds. In Official Methods of Analysis, 18th ed.; AOAC International: Gaithersburg, MD, USA, 2006. [Google Scholar]
- Shah, A.M.; Wang, Z.S.; Hu, R.; Peng, Q.; Zou, H.; Wang, L.; Xue, B. Discovery of the enrichment pathways and biomarkers using metabolomics techniques in unilateral and bilateral castration in yellow cattle. Pak. Vet. J. 2024, 44, 252–259. [Google Scholar] [CrossRef]
- Meng, Q.L. Efficacy and safety of letrozole in the treatment of recurrent endometriosis. Clin. Med. Res. Pract. 2019, 4, 84–85. [Google Scholar] [CrossRef]
- Han, J. Clinical efficacy of letrozole combined with different regimens in patients with polycystic ovary syndrome. J. Changzhi Med. Coll. 2020, 34, 217–221. [Google Scholar] [CrossRef]
- Qu, H.G.; Wen, T.F.; Zhang, X.J. Clinical observation on ovulation induction effects of letrozole and clomiphene citrate in infertile patients with polycystic ovary syndrome. Matern. Child Health Care China 2020, 35, 2859–2861. [Google Scholar] [CrossRef]
- Ding, Y.Y.; Si, J.G.; Li, D.Y. Effects of Nuangong Yunzi Capsules combined with letrozole on endometrium and sex hormones in patients with ovulatory dysfunction infertility. Northwest Pharm. J. 2023, 38, 155–159. [Google Scholar] [CrossRef]
- Mo, G.H.; Hong, G.Z.; Tang, Z.X. Clinical effect of letrozole in ovulation induction treatment of infertile patients with polycystic ovary syndrome. Women Child Health J. 2024, 3, 113–116. [Google Scholar] [CrossRef]
- Yapura, M.; Mapletoft, R.; Pierson, R.; Singh, J.; Adams, G. Synchronization of ovulation in cattle with an aromatase inhibitor–based protocol. Theriogenology 2016, 85, 1382–1389. [Google Scholar] [CrossRef] [PubMed]
- Shabankareh, H.K.; Sarsaifi, K.; Mehrannia, T. In vitro maturation of ovine oocytes using different maturation media: Effect of human menopausal serum. J. Assist. Reprod. Genet. 2011, 28, 531–537. [Google Scholar] [CrossRef] [PubMed]
- Lambalk, C.B. The enigma of the gonadotropin-releasing hormone pulse frequency governing individual secretion of luteinizing hormone and follicle-stimulating hormone. F&S Rep. 2023, 4, 27–32. [Google Scholar] [CrossRef] [PubMed]
- Lee, S.Y.; Kang, Y.J.; Kwon, J.; Nishi, Y.; Yanase, T.; Lee, K.-A.; Koong, M.K. miR-4463 regulates aromatase expression and activity for 17β-estradiol synthesis in response to follicle-stimulating hormone. Clin. Exp. Reprod. Med. 2020, 47, 194–206. [Google Scholar] [CrossRef] [PubMed]
- Kasuga-Yamashita, F.; Baba, T.; Nagao, S.; Fujibe, Y.; Morishita, M.; Kuno, Y.; Mariya, T.; Honnma, H.; Endo, T.; Kiya, T.; et al. Letrozole increases preantral follicle growth and decreases estradiol production without impairing follicle survival. J. Ovarian Res. 2022, 15, 136. [Google Scholar] [CrossRef]
- Kivrak, M.B.; Corum, O.; Alkan, H.; Atik, O.; Aydin, I.; Uney, K. The pharmacokinetics of letrozole and its effect on gonadotropins in anestrous ewes. Theriogenology 2021, 176, 225–232. [Google Scholar] [CrossRef] [PubMed]
- Arruda, P.; Barreto, P. Lysine Catabolism Through the Saccharopine Pathway: Enzymes and Intermediates Involved in Plant Responses to Abiotic and Biotic Stress. Front. Plant Sci. 2020, 11, 587. [Google Scholar] [CrossRef] [PubMed]
- Leandro, J.; Houten, M.S. The lysine degradation pathway: Subcellular compartmentalization and enzyme deficiencies. Mol. Genet. Metab. 2020, 131, 14–22. [Google Scholar] [CrossRef]
- Hara, R.; Yamagata, K.; Miyake, R.; Kawabata, H.; Uehara, H.; Kino, K. Discovery of Lysine Hydroxylases in the Clavaminic Acid Synthase-Like Superfamily for Efficient Hydroxylysine Bioproduction. Appl. Environ. Microbiol. 2017, 83, 693–717. [Google Scholar] [CrossRef] [PubMed]
- Marco, D.M.; Rai, R.S.; Scietti, L.; Mattoteia, D.; Liberi, S.; Moroni, E.; Pinnola, A.; Vetrano, A.; Iacobucci, C.; Santambrogio, C.; et al. Molecular structure and enzymatic mechanism of the human collagen hydroxylysine galactosyltransferase GLT25D1/COLGALT1. Nat. Commun. 2025, 16, 3624. [Google Scholar] [CrossRef]
- Kofoed, C.; Wu, S.; Sørensen, K.K.; Treiberg, T.; Arnsdorf, J.; Bjørn, S.P.; Jensen, T.L.; Voldborg, B.G.; Thygesen, M.B.; Jensen, K.J.; et al. Highly Selective Lysine Acylation in Proteins Using a Lys-His Tag Sequence. Chem. Eur. J. 2022, 28, 147. [Google Scholar] [CrossRef] [PubMed]
- Kjaer, A.; Larsen, P.J.; Knigge, U.; Warberg, J. Dehydration stimulates hypothalamic gene expression of histamine synthesis enzyme: Importance for neuroendocrine regulation of vasopressin and oxytocin secretion. Endocrinology 1995, 136, 2189–2197. [Google Scholar] [CrossRef] [PubMed]
- Ye, J.; Yan, X.; Zhang, W.; Lu, J.; Xu, S.; Li, X.; Qin, P.; Gong, X.; Liu, Y.; Ling, Y.; et al. Integrative proteomic and phosphoproteomic analysis in the female goat hypothalamus to study the onset of puberty. BMC Genom. 2023, 24, 621. [Google Scholar] [CrossRef] [PubMed]
- Bottino, C.; Peserico, A.; Simone, C.; Caretti, G. SMYD3: An Oncogenic Driver Targeting Epigenetic Regulation and Signaling Pathways. Cancers 2020, 12, 142. [Google Scholar] [CrossRef] [PubMed]
- Nagyová, E.; Němcová, L.; Camaioni, A. Cumulus Extracellular Matrix Is an Important Part of Oocyte Microenvironment in Ovarian Follicles: Its Remodeling and Proteolytic Degradation. Int. J. Mol. Sci. 2021, 23, 54. [Google Scholar] [CrossRef] [PubMed]






| Ingredients | Content | Nutrient Levels ② | Content |
|---|---|---|---|
| Whole corn silage | 48.55 | DM | 53.81 |
| Corn | 14.85 | CP | 9.85 |
| Wheat bran | 8.56 | EE | 2.35 |
| Soybean meal | 5.28 | Ash | 5.52 |
| Cotton seed meal | 2.58 | NDF | 46.71 |
| Sorghum stalks | 13.86 | ADF | 27.55 |
| Bioactive peptide | 2.5 | Ca | 0.32 |
| NaHCO3 | 0.51 | P | 0.24 |
| NaCl | 0.31 | ME/(MJ·kg−1) | 8.05 |
| Premix ① | 3 | ||
| Total | 100 |
| Items | Group | SEM | p-Value | |||
|---|---|---|---|---|---|---|
| Control Group | LE Group | Group | Time | Group × Time | ||
| E2 (pg/mL) | 12.78 | 12.96 | 0.16 | 0.58 | <0.01 | 0.54 |
| T (pg/mL) | 7.62 B | 8.04 A | 0.07 | 0.01 | <0.01 | 0.63 |
| LH (ng/mL) | 0.60 B | 0.89 A | 0.01 | <0.01 | <0.01 | <0.01 |
| GnRH (pg/mL) | 41.92 B | 61.29 A | 0.68 | <0.01 | 0.25 | <0.01 |
| FSH (mIU/mL) | 16.43 b | 16.70 a | 0.06 | <0.03 | <0.01 | 0.03 |
| P4 (ng/mL) | 2.19 A | 2.03 B | 0.01 | <0.01 | <0.01 | <0.01 |
| Items | Groups | p-Value | |
|---|---|---|---|
| Control Group | LE Group | ||
| Estrous rate | 72.73% (24/33) | 75.76% (25/33) | 0.78 |
| Conception rate on 45 d | 72.73% (24/33) | 78.79% (26/33) | 0.57 |
| Lambing rate | 104.17% (25/24) | 119.23% (31/26) | 0.17 |
| Twin lambing rate | 0 (0/24) b | 15.38% (4/26) a | 0.04 |
| Reproduction rate | 69.70% (23/33) | 87.88% (29/33) | 0.07 |
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Li, T.; Wang, X.; Lu, H.; Lu, T.; Reyilaguli, R.; Lv, H.; Liu, X.; Zhang, J.; Li, S.; Xiao, R.; et al. Effect of Letrozole Administration on Reproductive Performance and Plasma Metabolites of Ewes During Estrus Synchronization Treatment. Life 2026, 16, 1058. https://doi.org/10.3390/life16071058
Li T, Wang X, Lu H, Lu T, Reyilaguli R, Lv H, Liu X, Zhang J, Li S, Xiao R, et al. Effect of Letrozole Administration on Reproductive Performance and Plasma Metabolites of Ewes During Estrus Synchronization Treatment. Life. 2026; 16(7):1058. https://doi.org/10.3390/life16071058
Chicago/Turabian StyleLi, Tingting, Xihu Wang, Hao Lu, Tingting Lu, Reyimu Reyilaguli, Haibo Lv, Xiaojun Liu, Jianjun Zhang, Shijie Li, Rui Xiao, and et al. 2026. "Effect of Letrozole Administration on Reproductive Performance and Plasma Metabolites of Ewes During Estrus Synchronization Treatment" Life 16, no. 7: 1058. https://doi.org/10.3390/life16071058
APA StyleLi, T., Wang, X., Lu, H., Lu, T., Reyilaguli, R., Lv, H., Liu, X., Zhang, J., Li, S., Xiao, R., & Zhao, G. (2026). Effect of Letrozole Administration on Reproductive Performance and Plasma Metabolites of Ewes During Estrus Synchronization Treatment. Life, 16(7), 1058. https://doi.org/10.3390/life16071058

