Platelet-Rich Plasma in Recurrent Pregnancy Loss: Toward a Precision Medicine Framework for Biologically Guided Patient Selection
Abstract
1. Introduction
2. Literature Search Strategy
3. PRP and Endometrial Receptivity
3.1. PRP and Endometrial Regeneration
3.2. PRP and Regulation of Endometrial Gene Expression
3.3. PRP and Angiogenesis in the Endometrium
3.4. Regulation of Inflammatory Response
3.5. Extracellular Matrix Remodeling
4. PRP at the Maternal–Fetal Interface
| Biological Process | Target Cells | Key PRP Factors | Molecular Pathways | Proposed Functional Effects Relevant to Early Pregnancy | Evidence Basis | References |
|---|---|---|---|---|---|---|
| Decidualization | Endometrial stromal cells | TGF-β, PDGF, IGF-1, EGF | PI3K/AKT, MAPK/ERK, cAMP-dependent signaling | Biologically plausible modulation of stromal-cell differentiation and decidual function; direct PRP-specific evidence remains limited | Mechanistic human endometrial/decidual evidence; direct PRP-specific and RPL-specific evidence lacking | [84,85] |
| Endometrial regeneration and tissue remodeling | Endometrial epithelial and stromal cells | PDGF, EGF, TGF-β, IGF-1 | MAPK/ERK, PI3K/AKT and growth-factor-associated signaling | Proposed promotion of cellular proliferation and tissue remodeling through growth-factor-mediated signaling | Indirect mechanistic evidence from uterine/endometrial and general growth-factor biology; direct PRP-specific and RPL-specific evidence lacking | [43,44,45] |
| Trophoblast invasion | Trophoblast cells | PRP-derived EVs and associated bioactive cargo | EV-mediated intercellular signaling | Potential modulation of cellular processes relevant to trophoblast migration and invasion | Indirect mechanistic evidence based on PRP-derived EV biology; direct evidence for trophoblast invasion following intrauterine PRP in RPL is lacking | [86,87] |
| Extracellular matrix degradation | Trophoblasts, stromal cells | MMP-2, MMP-9 | ECM remodeling pathways | Potential modulation of ECM remodeling and processes relevant to trophoblast invasion | Indirect reproductive and mechanistic evidence; direct evidence for PRP-mediated ECM remodeling in women with RPL is lacking | [88,89] |
| Angiogenesis | Endothelial cells | VEGF | VEGF/VEGFR signaling | Biologically plausible promotion of endothelial proliferation and angiogenic signaling through VEGF-related pathways | Established VEGF/VEGFR angiogenic biology; direct evidence for PRP-induced angiogenesis in women with RPL is lacking | [64] |
| Vascular maturation | Pericytes, smooth muscle cells | PDGF-BB | PDGF/PDGFR signaling | Potential support of mural-cell recruitment and vascular stabilization through PDGF-mediated signaling | Experimental and general vascular evidence for PDGF-mediated mural-cell recruitment; direct PRP-specific, reproductive, and RPL-specific evidence lacking | [90,91] |
| Immune tolerance | Tregs | TGF-β | TGF-β/SMAD signaling | Biologically plausible modulation of Treg differentiation and immune-tolerance pathways through TGF-β signaling | Pregnancy-related and general immunological evidence for TGF-β/Treg regulation; direct evidence for PRP-induced Treg modulation in women with RPL is lacking | [92,93] |
| Regulation of uterine NK cells | uNK cells | Cytokines and growth factors | Cytokine-mediated immune signaling | Potential modulation of uNK-cell functions involved in immune regulation and vascular remodeling during pregnancy | Human pregnancy-related evidence for uNK biology and cytokine regulation; direct evidence that intrauterine PRP modulates uNK cells in women with RPL is lacking | [94,95] |
| Macrophage polarization | Decidual macrophages | PRP-derived bioactive factors | M1/M2 polarization-associated signaling | Potential modulation of macrophage polarization toward a reparative M2-associated phenotype | Human pregnancy evidence supports the relevance of decidual macrophage polarization, while PRP-mediated M1/M2 modulation is supported by experimental evidence; direct evidence following intrauterine PRP in women with RPL is lacking | [96,97] |
| Anti-inflammatory signaling | Immune and endometrial cells | PRP-derived cytokines and growth factors | NF-κB and inflammation-associated signaling | Potential attenuation of pro-inflammatory signaling and modulation of the local inflammatory response | PRP-specific mechanistic evidence supports anti-inflammatory effects in broader biological contexts; direct human reproductive and RPL-specific evidence is lacking | [26] |
| OS regulation | Endometrial and reproductive cells | PRP-derived bioactive factors | Nrf2-mediated antioxidant signaling | Potential enhancement of cellular antioxidant defenses and attenuation of oxidative damage | PRP-specific experimental evidence supports Nrf2-mediated antioxidant effects in non-reproductive cells; direct evidence in human endometrium and women with RPL is lacking | [98,99] |
| Epigenetic and microRNA signaling | Endometrial and maternal–fetal interface cells | PRP-derived bioactive factors and EV-associated cargo | miRNA-mediated gene regulation | Hypothesized modulation of gene-regulatory pathways relevant to endometrial function and pregnancy maintenance | Human RPL evidence supports altered miRNA expression in RPL, while PRP-derived EVs provide a biologically plausible source of regulatory molecular cargo; a direct PRP–EV/miRNA mechanism in the endometrium or RPL has not been demonstrated. | [86,87,100] |
| Mitochondrial support | Endometrial cells | PRP-derived bioactive factors | Mitochondrial homeostasis and cellular stress-response pathways | Hypothesized support of mitochondrial homeostasis and cellular function in the endometrium | Indirect evidence from reviews of PRP in thin endometrium and endometrial receptivity; direct experimental evidence for PRP-mediated mitochondrial effects in human endometrium or RPL is lacking | [31,101] |
4.1. PRP and Modulation of Decidualization
4.2. PRP and Trophoblast Invasion and Placentation
4.3. PRP in Angiogenesis and Vascular Remodeling
4.4. PRP and Immunomodulation
4.5. PRP and OS Modulation
4.6. PRP EVs and microRNA Signaling
5. Applications of PRP in RPL and ART
5.1. PRP in RPL
5.2. Indirect Evidence from RIF
5.3. Indirect Evidence from Thin Endometrium
5.4. Limitations of Cross-Population Extrapolation
6. Clinical Implications and Positioning of PRP in RPL
Patient Selection and Clinical Positioning of PRP
7. Future Directions in Precision Reproductive Medicine
7.1. Toward Biomarker-Guided Patient Stratification
7.2. Research Priorities
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Study | Design | Sample Size | Clinical Category | Population | PRP Preparation and Administration Protocol | Reproductive Outcomes | Major Limitations |
|---|---|---|---|---|---|---|---|
| Nazari et al. [136] | RCT | 63 randomized; 40 completed | RPL—Direct evidence | Women with unexplained RPL undergoing IVF | Intrauterine infusion of 0.5 mL autologous PRP, administered 48 h before embryo transfer | Higher clinical pregnancy rate (35% vs. 20%); live birth observed only in PRP group (15% vs. 0%), not statistically significant | Small sample size; high dropout rate; lack of statistical significance; single-center study |
| Russell et al. [137] | Retrospective cohort study | 85 patients (133 cycles) | RIF/thin endometrium—Indirect evidence | Women with RIF (56.5%), thin endometrium (27%), or both | Intrauterine PRP (0.5–0.75 mL) prepared from 21 cc blood using 2-step centrifugation; administered prior to FET (1 infusion per cycle in most cases) | Significant increase in endometrial thickness (~+1 mm); higher clinical pregnancy rate (37% vs. 20%); higher live birth rate (19% vs. 2%) compared to prior cycles | Retrospective design; no control group; within-patient comparison; mixed population; indirect relevance to RPL |
| Enatsu et al. [138] | Retrospective cohort study | 54 patients/54 embryo transfer cycles | RIF/thin endometrium—Indirect evidence | Women with RIF (≥2 failed ET cycles), including thin endometrium (<8 mm) and unexplained RIF | Intrauterine PRP infusion prior to embryo transfer (FET cycles with high-quality blastocysts) | Higher clinical pregnancy rate (50% vs. 9.6% in prior cycles); higher hCG positivity (57.4% vs. 27.2%); no significant improvement in EMT | Retrospective design; no control group; within-patient comparison; small sample size; mixed population; indirect relevance to RPL |
| Ban et al. [139] | Retrospective cohort (with control group) | 118 patients (64 PRP/54 control) | RIF—Indirect evidence | Women with RIF undergoing FET cycles | Intrauterine infusion of leukocyte-poor PRP prior to embryo transfer | Higher β-hCG positivity (57.8% vs. 38.9%); higher clinical pregnancy rate (45.3% vs. 24.5%); higher LBR (42.2% vs. 18.5%); no difference in miscarriage rate | Retrospective design; non-randomized; potential selection bias; no RPL population; indirect applicability to miscarriage outcomes |
| Castells et al. [144] | RCT with retrospective follow-up | 22 patients (13 PRGF/9 control) | Thin endometrium—Indirect evidence | Women with very thin endometrium (≤5 mm) undergoing hormone-prepared FET cycles | Intrauterine instillation of PRGF, three infusions combined with estrogen therapy | Greater increase in EMT in PRGF group (+1.30 mm vs. +0.58 mm); some patients reached ≥7 mm; limited pregnancy and LBR | Very small sample size; limited number of embryo transfers; low statistical power; not RPL population; indirect relevance to miscarriage outcomes |
| Aghajanova et al. [145] | Single-arm prospective cohort study | 46 patients (51 cycles) | Thin endometrium—Indirect evidence | Women with thin endometrium (EMT < 6 mm) and prior cancelled or failed FET cycles | Intrauterine PRP infusion prior to FET cycle | Significant increase in EMT (from 4.0 mm to 7.1 mm); 64.7% achieved ≥7 mm; clinical pregnancy rate 54.2%; live birth achieved in subset of patients | Single-arm design; no control group; small sample size; selection bias; not RPL population; outcomes influenced by ART context |
| Zamaniyan et al. [140] | Prospective controlled trial | 98 patients | RIF—Indirect evidence | Women with ≥3 failed high-quality embryo transfers undergoing FET cycles | Intrauterine infusion of 0.5 mL autologous PRP (4–6× platelet concentration) administered 48 h before embryo transfer | Higher clinical pregnancy rate (48.3% vs. 23.3%); higher ongoing pregnancy rate (46.7% vs. 11.7%); higher implantation rate (58.3% vs. 25%) compared to control | Non-randomized design; baseline differences between groups; no direct RPL population; outcomes limited to implantation/pregnancy, not miscarriage |
| Allahveisi et al. [141] | RCT | 50 patients (25 PRP/25 control) | RIF—Indirect evidence | Women with RIF undergoing FET cycles | Intrauterine infusion of 0.5 mL autologous PRP 48 h before embryo transfer (control: Ringer solution) | No significant difference in chemical pregnancy (28% vs. 36%) or clinical pregnancy rates (28% vs. 24%) between groups | Small sample size; limited statistical power; no live birth data; no RPL population |
| Eftekhar et al. [149] | RCT | 83 patients (40 PRP/43 control) | Thin endometrium—Indirect evidence | Women with poor endometrial response (<7 mm) undergoing FET cycles | Intrauterine infusion of 0.5–1 mL autologous PRP on day 13 of HRT cycle; repeated after 48 h if needed | Significant increase in endometrial thickness (8.67 mm vs. control); higher implantation and clinical pregnancy rates | No live birth data; limited follow-up; not RPL population; ART-specific setting |
| Safdarian et al. [142] | RCT | 120 patients (60 PRP/60 control) | RIF—Indirect evidence | Women with RIF undergoing frozen-thawed embryo transfer | Intrauterine infusion of 0.5 mL autologous PRP 48 h before embryo transfer | Higher implantation rate (28% vs. 11.9%); higher clinical pregnancy rate (51.6% vs. 26.6%); higher LBR (58.3% vs. 28.3%); no difference in miscarriage rate | Single-center study; no RPL population; increased preterm delivery; findings not generalizable to miscarriage outcomes |
| Nayar et al. [66] | Prospective cohort study (non-randomized) | 100 patients (70 PRP/30 control) | Thin endometrium—Indirect evidence | Women < 40 years with thin endometrium (EMT < 7 mm) undergoing FET cycles | Intrauterine PRP instillation on days 7, 9, and 11 of HRT cycle | Increased EMT; higher clinical pregnancy rate (35.7% vs. 10%) compared to control | Non-randomized design; potential selection bias; no live birth data; not RPL population; ART-specific setting |
| Peng et al. [67] | Retrospective cohort study (with control group) | 220 patients (104 PRP/116 control) | RIF + thin endometrium—Indirect evidence | Women with RIF and thin endometrium | Intrauterine PRP perfusion prior to embryo transfer | Increased EMT; improved uterine blood flow (↓ PI/RI); higher implantation, clinical pregnancy, ongoing pregnancy, and LBRs compared to control | Retrospective design; non-randomized; mixed population; potential confounding; not RPL population |
| Alonso-Frías et al. [146] | Retrospective multicenter observational cohort study | 280 embryo-transfer cycles | Thin endometrium—Indirect evidence | Women with thin endometrium (3–6.9 mm) undergoing embryo transfer in HRT cycles | Intrauterine autologous PRP instillation during HRT cycles | Greater increase in EMT with PRP (0.95 ± 0.99 vs. 0.16 ± 0.77 mm); no independent association with biochemical pregnancy, clinical pregnancy, ongoing pregnancy, or live birth | Retrospective observational design; potential residual confounding; PRP protocol details not provided in abstract; not an RPL population |
| Xiao et al. [148] | Retrospective matched cohort study | 620 ET cycles (310 PRP; 310 controls) | RIF/thin endometrium/mixed—Indirect evidence | Women undergoing embryo transfer; PRP group included higher proportions with clinician-recorded RIF and other reproductive/uterine histories | Intrauterine PRP infusion before embryo transfer | Improved endometrial parameters; live birth 26.5% vs. 17.1% (adjusted RR 1.55, 95% CI 1.12–2.15); higher clinical and ongoing pregnancy rates | Retrospective observational design; baseline clinical differences despite matching; potential residual confounding; heterogeneous indications for PRP; not an RPL-specific population |
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Stavros, S.; Potiris, A.; Daskalaki, M.A.; Dafopoulos, S.; Moustakli, E.; Karampitsakos, T.; Sioutis, D.; Dafopoulos, K.; Thomakos, N.; Daskalakis, G.; et al. Platelet-Rich Plasma in Recurrent Pregnancy Loss: Toward a Precision Medicine Framework for Biologically Guided Patient Selection. Med. Sci. 2026, 14, 576. https://doi.org/10.3390/medsci14050576
Stavros S, Potiris A, Daskalaki MA, Dafopoulos S, Moustakli E, Karampitsakos T, Sioutis D, Dafopoulos K, Thomakos N, Daskalakis G, et al. Platelet-Rich Plasma in Recurrent Pregnancy Loss: Toward a Precision Medicine Framework for Biologically Guided Patient Selection. Medical Sciences. 2026; 14(5):576. https://doi.org/10.3390/medsci14050576
Chicago/Turabian StyleStavros, Sofoklis, Anastasios Potiris, Maria Anastasia Daskalaki, Stefanos Dafopoulos, Efthalia Moustakli, Theodoros Karampitsakos, Dimos Sioutis, Konstantinos Dafopoulos, Nikolaos Thomakos, George Daskalakis, and et al. 2026. "Platelet-Rich Plasma in Recurrent Pregnancy Loss: Toward a Precision Medicine Framework for Biologically Guided Patient Selection" Medical Sciences 14, no. 5: 576. https://doi.org/10.3390/medsci14050576
APA StyleStavros, S., Potiris, A., Daskalaki, M. A., Dafopoulos, S., Moustakli, E., Karampitsakos, T., Sioutis, D., Dafopoulos, K., Thomakos, N., Daskalakis, G., & Drakakis, P. (2026). Platelet-Rich Plasma in Recurrent Pregnancy Loss: Toward a Precision Medicine Framework for Biologically Guided Patient Selection. Medical Sciences, 14(5), 576. https://doi.org/10.3390/medsci14050576

