PRP and Silver Nanoparticles in Wound Healing: What Studies Show So Far

Professional article for medical professionals

PRP and silver nanoparticles in wound healing: research between regeneration and microbial control

Platelet-rich plasma provides growth factors, while silver nanoparticles have antimicrobial activity. Combining the two approaches is being investigated in the laboratory, in animal models and in an initial clinical study. This article examines what is supported by evidence, where findings conflict and which questions remain open.

Research status: September 2026. The assessment is based on 30 sources, including primary studies, recent meta-analyses, Cochrane reviews and the German S3 guideline on the local treatment of hard-to-heal and chronic wounds.

At a glance

  • Studied, but with very limited clinical evidence. Animal models, several hydrogel developments and one randomized study involving 120 patients are available. Larger studies with complete control groups are lacking.
  • The individual components are supported by different levels of evidence. Recent meta-analyses report positive effects for PRP in diabetic foot ulcers. Evidence for silver-containing wound dressings is mixed: older Cochrane reviews were cautious, while more recent meta-analyses show positive signals, particularly in diabetic foot ulcers. The German S3 guideline from 2023 made no recommendation for either approach because of uncertain evidence.26,27,28,29
  • A simple synergistic effect has not been established. Depending on the particle type, silver nanoparticles may inhibit or enhance platelet activation, and plasma proteins adsorb onto the particles.
  • Regulatorily demanding. Medical devices containing nanomaterials are subject to a specific classification rule in the EU. Improvised mixtures in clinical practice have not been established.

Overview of the evidence

Where PRP, silver and the combination currently stand

The overview shows the evidence levels for which data are available and what the highest level indicates. The presence of evidence at a particular level does not automatically prove benefit: systematic reviews and meta-analyses of silver have produced mixed results.

Evidence level
PRPin chronic wounds
Silver and nanosilverin wound care
CombinationPRP/PRF plus silver nanoparticles
Systematic reviews and meta-analyses
Randomized clinical trials
Animal models
Laboratory studies
Reviews and meta-analysesCochrane 2016 and more recent meta-analyses1,2,3
Randomized trialsMany, mostly small and heterogeneous RCTs
Animal modelsAvailable
Laboratory studiesAvailable
Conclusion from the highest levelRecent meta-analyses report positive effects in diabetic foot ulcers; the German S3 guideline from 2023 made no recommendation because of uncertain evidence.26,29
Reviews and meta-analysesCochrane reviews and more recent meta-analyses4,5,27,28
Randomized trialsNumerous, predominantly small RCTs4
Animal modelsAvailable
Laboratory studiesExtensive, including cytotoxicity7
Conclusion from the highest levelMixed evidence: recent meta-analyses show positive signals, particularly in diabetic foot ulcers; the 2023 S3 guideline made no recommendation.27,28,29
Reviews and meta-analysesNone
Randomized trialsOne study; synergy not tested8
Animal modelsDog, rat9,10,11
Laboratory studiesData on interactions13,16
Conclusion from the highest levelPreclinical signals; clinical benefit remains uncertain.
Data available Data available, limited interpretability No data

Underlying hypothesis

Why the combination is being investigated

Chronic wounds often remain stuck in a persistent inflammatory phase, and bacterial colonization is considered one of the major barriers to healing. PRP contains platelets that release growth factors such as PDGF, VEGF and TGF-β after activation. One practical limitation is that these factors are released rapidly and remain available at the site of action only for a short time11.

Silver nanoparticles release silver ions and show activity against a broad range of microorganisms in laboratory studies. The research hypothesis is therefore that a matrix containing PRP and silver could prolong regenerative signalling while reducing microbial burden. Whether these effects are additive, however, depends on how the components interact. This is where the key open questions lie.

Component 1

PRP in chronic wounds: what the reviews show

The 2016 Cochrane review included ten randomized trials with 442 participants. For chronic wounds overall, benefit remained uncertain; for diabetic foot ulcers there was a possible advantage, but this was based on only two small studies with low-quality evidence. Four of the included studies were supported by manufacturers of PRP systems1.

More recent meta-analyses that include a larger number of studies report clearer findings for diabetic foot ulcers2,3,26. A 2025 meta-analysis of 15 randomized trials involving 1,010 patients reported a higher rate of complete wound healing and, on average, a shorter healing time with PRP compared with conventional care26. However, heterogeneity of the preparations remains a central problem: platelet concentration, leukocyte content, activation and mode of application differ considerably between studies.

The German S3 guideline on the local treatment of hard-to-heal and chronic wounds took a more cautious view of PRP based on the 2023 evidence and made no recommendation because the evidence was uncertain29. This does not necessarily contradict the more recent meta-analyses: the guideline reflects an earlier evidence base and a broader spectrum of chronic wounds, whereas current meta-analyses report positive signals mainly in diabetic foot ulcers.

Systematic reviews of autologous PRP in chronic wounds
ReviewStudy baseResultInterpretation
Martinez-Zapata et al., Cochrane 2016110 RCTs, 442 participantsChronic wounds overall: RR 1,19 (0,95–1,50)
Diabetic foot ulcer: RR 1,22 (1,01–1,49)
Venous ulcers: RR 1,02 (0,81–1,27)
Low-quality evidence, small studies
Deng et al. 20232RCTs in diabetic foot ulcersHealing rate RR 1,42 (1,30–1,56), amputations RR 0,35 (0,15–0,83), no increase in adverse eventsPositive signal, heterogeneity of preparations
Ruiz-Muñoz et al. 2024311 RCTs, 828 patientsComplete healing OR 3,69 (2,62–5,20)Mixed indications of publication bias
Xu et al. 20252615 RCTs, 1,010 patientsComplete healing RR 1,53 (1,39–1,58)
Healing time WMD −19.48 days (−27.91 to −11.05)
Positive signal in DFU; differing PRP protocols and modes of application

Component 2

Silver and nanosilver: clinical evidence remains mixed

Silver-containing wound dressings, including products with nanocrystalline silver, have been used for years. Silver nanoparticles in wound care are therefore not a future technology. Their clinical benefit remains controversial.

A Cochrane review of 26 randomized trials involving 2,066 participants, mainly with burns, found insufficient evidence that silver-containing dressings or creams improve healing or prevent infection. For silver sulfadiazine in burns, there were indications of slower healing4. Another Cochrane review of contaminated and infected wounds likewise found insufficient evidence to support a recommendation5.

More recent meta-analyses present a more differentiated picture. An analysis of 18 randomized trials involving 1,825 participants reported a higher healing rate for diabetic foot ulcers with silver-containing dressings, whereas the effect in venous leg ulcers was not statistically significant27. A further 2025 meta-analysis of 12 studies and 808 patients also reported more favorable healing outcomes in diabetic foot ulcers, with high heterogeneity for healing time28. These data concern different types of silver dressings and cannot be generalized to every form of nanosilver.

The German S3 guideline from 2023 also made no recommendation for silver-containing wound dressings because of uncertain evidence. It additionally points to possible cytotoxicity, differences in silver release and the potential for resistance development29. Nevertheless, a 2012 international expert consensus paper cautions against abandoning silver dressings across the board and recommends targeted, time-limited use when microbial burden is elevated6. There is also a biological trade-off: silver released from wound dressings was toxic to keratinocytes and fibroblasts in cell culture, precisely the cells needed for wound closure7.

Evidence on the combination

What has been published on PRP or PRF plus silver nanoparticles

The following studies investigate the combination directly. One frequently cited study is deliberately included because, despite how it is sometimes presented, it does not actually test the combination.

Clinical study

PRF plus a silver nanoparticle dressing in chronic refractory wounds

Lin et al. 2023, randomized, 120 patients, single-center8

Design
Control group: standard treatment plus silver nanoparticle dressing. Study group: PRF plus silver nanoparticle dressing. Sixty patients per group, treated between January 2020 and January 2022.
Finding
The study group had a shorter healing time, lower inflammation and pain scores (hs-CRP, PCT, VAS), a higher proportion of good to very good treatment outcomes (95.0% versus 81.7%) and fewer wound complications (6.7% versus 21.7%).
Limitations
Both groups received silver. The study therefore tested the addition of PRF, not the combination versus PRF alone. The endpoint “treatment outcome” is not standardized, and confirmation by other centers is lacking.
Animal model

PRP with chitosan-coated silver nanoparticles in full-thickness wounds

Ragab et al. 2026, 24 dogs, 4 groups, 21 days9

Design
Standardized 2 × 2 cm wounds. Groups: saline, PRP, PRP plus chitosan nanoparticles, and PRP plus chitosan-coated silver nanoparticles, each administered intradermally around the wound margin.
Finding
The silver combination produced the greatest reduction in wound area and the lowest microbial counts. PRP alone resulted in more collagen on day 7, while the silver combination did so on days 14 and 21.
Limitations
There was no nanoparticle-only group without PRP, healthy animals were used rather than infected or chronic wounds, and there were only six animals per group. Platelet count increased only from 238 to 385 × 10³/µL. Particle stability in PRP was not measured.
Preclinical platform

Injectable hydrogel with PRP and nanosilver-containing particles

Su et al. 2025, rat model10

Design
Hydrogel made of modified alginate and carboxymethyl chitosan with PRP and chitosan-modified polyphosphazene particles loaded with nanosilver and phloretin. Tested in MRSA-infected wounds in diabetic rats.
Finding
The authors report antibacterial activity, improved angiogenesis and accelerated healing in the model.
Limitations
Multi-component system: the individual contributions of silver, phloretin, chitosan and PRP cannot be separated. No human data.
Preclinical platform

Chitosan hydrogel with PRP and graphene oxide–silver nanoparticles

GACP@PRP, 2026, diabetic wound model11

Design
Physically cross-linked hydrogel made of graphene oxide–silver nanoparticles, chitosan and PNIPAM as a carrier for PRP in type 2 diabetic wounds.
Approach
The primary aim is to slow the rapid release of PRP growth factors. Silver is one component of the carrier matrix.
Limitations
Preclinical material concept; transferability to humans remains uncertain.
Frequently miscited

Silver nanoparticles and PRF in tendon injuries

Scientific Reports 2023, 27 donkeys12

Design
Three groups: suturing alone, suturing plus silver nanoparticles, and suturing plus PRF.
Interpretation
Silver and PRF were tested separately. The study provides no data on the combination, even though the title mentions both.

Mechanisms

Interactions that argue against simple addition

PRP is not an inert carrier fluid but a matrix containing platelets, plasma proteins and, depending on preparation, leukocytes. Silver nanoparticles interact with all three components. The letters in the diagram correspond to the explanations alongside it.

Interactions between PRP, silver nanoparticles, bacteria and tissue PRP and silver nanoparticles influence each other (A, B). Both affect bacteria (C, D). Silver nanoparticles can damage tissue cells (E) and enter the circulation (F). PRP supplies growth factors to tissue. Bacteria PRP Platelets, Plasma proteins AgNP Silver nanoparticles Wound tissue Circulation, organs Growth factors A B C D E F
Simplified diagram. The direction and magnitude of effects depend on particle size, coating, concentration and PRP preparation.
  1. Silver nanoparticles alter platelet function

    Functionalized particles measuring 2 to 3.7 nm reduced aggregation as well as P-selectin, GPIIb/IIIa and thromboxane B2 at 50 to 100 µg/mL without damaging platelets, endothelial cells or fibroblasts13. Other preparations, in contrast, increased aggregation and procoagulant activity in freshly isolated human platelets14.

    This could also alter the activation and release profile of platelet-derived mediators. Whether and to what extent this changes the release of relevant growth factors from PRP must be investigated for each formulation.

  2. Plasma proteins form a corona around the particles

    Silver nanoparticles preferentially bind immunoglobulins and fibrinogen; adsorbed proteins reduce their antimicrobial activity and cytotoxicity15. Released silver ions are bound as silver sulfide within the corona in serum-containing media, reducing toxicity16. In a mouse sepsis model, however, a serum-protein coating enhanced antibacterial activity17.

    Fibrinogen also forms the scaffold of PRP gel. Laboratory values obtained in water or buffer cannot be transferred directly to a PRP matrix.

  3. PRP itself has antimicrobial activity

    In laboratory studies, leukocyte-rich PRP inhibited MRSA, MSSA, Enterococcus faecalis and Pseudomonas aeruginosa, but not Escherichia coli or Klebsiella pneumoniae18. In another study, both leukocyte-poor and leukocyte-rich PRP inhibited microbial growth to a similar extent for up to four hours19.

    Any additional benefit from silver should be assessed by pathogen. Studies should report the leukocyte content of PRP.

  4. Bacteria can adapt to nanosilver

    With repeated exposure, flagellated bacteria produce the protein flagellin, which causes the particles to aggregate and become inactive without requiring a genetic change. Particles immobilized on surfaces or inhibitors of flagellin formation can bypass this mechanism20.

    Silver is not resistance-proof. Freely mobile particles in a liquid matrix are fundamentally more susceptible to this mechanism than immobilized particles.

  5. The therapeutic window is narrow

    Silver released from wound dressings was toxic to keratinocytes and fibroblasts in cell culture7. Concentration, exposure time, particle size and coating determine whether antimicrobial or cell-damaging effects predominate.

  6. Systemically available particles accumulate in organs

    After intravenous administration in mice, the highest silver concentrations after 24 hours were found in the spleen (41.5% of the dose per gram) and liver (24.5%)21. Ten-nanometer particles distributed more widely and caused more liver and biliary tract damage than 40- or 100-nm particles22.

    Data on distribution and elimination are lacking for injectable applications in humans.

Modes of application

Potential formulations and their evidence base

Forms of application of the PRP and silver nanoparticle combination, evidence base and main issue
FormEvidence baseMain issue
Hydrogel or wound dressing with PRP and silverMost developed approach, several animal models10,11Multi-component systems; human studies are pending
PRF added to a silver wound dressingOne randomized study8Synergy not tested; no confirmatory study
Local injection of a mixtureOne animal model using healthy wounds9No human data; systemic silver distribution unresolved21,22
Creams or spraysNo studies combining these with PRP were identified in the researchStability of PRP components in such formulations remains uncertain

Legal framework

What needs to be considered in the EU and Germany

Medical device law. Under Rule 19 in Annex VIII of Regulation (EU) 2017/745, devices incorporating nanomaterial are classified as Class III where there is a high or medium potential for internal exposure, Class IIb where that potential is low, and Class IIa where it is negligible23. For products that place free nanoparticles onto an open wound, negligible internal exposure may be difficult to justify. The specific classification depends on the intended exposure.

Medicinal products and transfusion law. The preparation and use of autologous PRP in Germany may be subject to requirements under the Medicinal Products Act and the Transfusion Act. Section 13(2b) of the German Medicinal Products Act provides, under certain conditions, an exemption from the manufacturing authorization requirement for patient-specific preparation under the direct professional responsibility of a physician; notification, documentation and other transfusion-law obligations may also apply24,25,30. The specific legal classification depends on the preparation and application process and on the preparation used.

Intended purpose and combination. The intended purpose of a PRP system relates to the preparation process specified by the manufacturer. Adding other substances is covered by the intended system only if this is supported by the manufacturer’s information and regulatory documentation. Reliable human safety data are lacking for point-of-care combinations with nanosilver preparations not intended for that purpose; such an approach therefore cannot be inferred from preclinical studies.

This section provides an overview of the legal framework and does not constitute legal advice for individual cases.

Research needs

Open questions that studies need to answer

  • Release of growth factorsHow do defined particles (size, coating, concentration) alter the time course of PDGF, VEGF and TGF-β release from PRP?
  • Bioavailable silver in the matrixHow much silver remains active in a PRP or fibrin matrix in the presence of a protein corona, chloride and sulfide?
  • Additional benefit over PRP aloneWhat additional antimicrobial benefit does silver provide over leukocyte-poor and leukocyte-rich PRP, assessed separately by pathogen?
  • Complete control groupsStudies comparing PRP alone, silver alone, the combination and standard care in infected or chronic wounds rather than healthy animals.
  • Standardized PRP reportingEnrichment factor, leukocyte content and activation should be reported. In the canine model, the enrichment factor was only about 1.69.
  • Long-term safetyLocal silver deposition, systemic uptake and resistance development with repeated use.

Further background

PRP preparation and wound healing on prpmed.de

For further technical and professional context on PRP, the following background articles may be useful. These links describe PRP preparation and the existing evidence; they do not constitute a recommendation to combine PRP with silver nanoparticles.

What are PRP tubes? · Matching PRP tubes and centrifuges correctly · PRP and wound healing: evidence and interpretation

Conclusion

Plausible strategy, clinically unresolved question

Combining PRP and silver nanoparticles is an actively studied preclinical strategy, particularly as part of hydrogel wound dressings. The clinical evidence is limited to one study that does not test the actual combination effect.

Laboratory findings also show interactions that call a simple addition of effects into question: silver nanoparticles can affect platelet function, plasma proteins alter the particles, and PRP has antimicrobial activity of its own. Based on the evidence available in 2026, it is not possible to determine whether patients with chronic wounds benefit from the combination. Answering this question requires studies with complete control groups, standardized PRP preparations and clinically relevant endpoints.

Frequently asked questions

Questions and answers

Are there studies on the combination of PRP and silver nanoparticles?

Yes. As of September 2026, there is one randomized clinical study involving 120 patients (PRF plus a silver nanoparticle dressing versus a silver nanoparticle dressing), one controlled animal model involving 24 dogs and several hydrogel developments in rat models. Larger clinical studies with complete control groups are lacking.

Do silver nanoparticles enhance the effect of PRP?

This has not been demonstrated. In laboratory studies, some silver nanoparticles inhibit platelet activation while others enhance it. Plasma proteins also adsorb onto the particles and alter their activity. The effect depends on particle size, coating and concentration.

How strong is the evidence for silver in wound care?

Older Cochrane reviews found insufficient evidence for a general benefit of silver-containing wound dressings. More recent meta-analyses, however, report positive signals particularly in diabetic foot ulcers, while the evidence remains heterogeneous. The German S3 guideline from 2023 made no recommendation because of uncertain evidence.

Does PRP have antimicrobial activity of its own?

In laboratory studies, yes, depending on the pathogen. Leukocyte-rich PRP inhibited MRSA and Pseudomonas aeruginosa, among others, but not Escherichia coli or Klebsiella pneumoniae. Clinical evidence for an infection-preventing effect is lacking.

Can PRP be mixed with silver nanoparticles in clinical practice?

No general authorization can be inferred from the available evidence. The preparation and use of autologous PRP in Germany may be subject to medicinal-products and transfusion-law requirements. The exemption under Section 13(2b) of the German Medicinal Products Act applies only under specific conditions, and notification, documentation and other obligations may also apply. Whether a specific combination with a silver nanoparticle preparation is permissible depends, among other factors, on product status, intended purpose, preparation method and use. Reliable human safety data are lacking for improvised addition of nanosilver to PRP.

Sources

Literature and legal references

  1. Martinez-Zapata MJ et al. Autologous platelet-rich plasma for treating chronic wounds. Cochrane Database Syst Rev. 2016;(5):CD006899.
  2. Deng J, Yang M, Zhang X, Zhang H. Efficacy and safety of autologous platelet-rich plasma for diabetic foot ulcer healing: a systematic review and meta-analysis of randomized controlled trials. J Orthop Surg Res. 2023;18.
  3. Ruiz-Muñoz M et al. Autologous platelet-rich plasma (APRP) in diabetes foot disease: a meta-analysis. J Diabetes Complications. 2024;38(2):108690.
  4. Storm-Versloot MN, Vos CG, Ubbink DT, Vermeulen H. Topical silver for preventing wound infection. Cochrane Database Syst Rev. 2010;(3):CD006478.
  5. Vermeulen H et al. Topical silver for treating infected wounds. Cochrane Database Syst Rev. 2007;(1):CD005486.
  6. Wounds International. International consensus: Appropriate use of silver dressings in wounds. Expert Working Group consensus. London; 2012.
  7. Poon VKM, Burd A. In vitro cytotoxity of silver: implication for clinical wound care. Burns. 2004;30(2):140–147.
  8. Lin L et al. Impact of platelet-rich fibrin combined with silver nanoparticle dressing on healing time and therapeutic efficacy of chronic refractory wounds. Altern Ther Health Med. 2023;29(6):264–267.
  9. Ragab M, Rizk A, Shouman Z, Omar AA, Zaghloul A, Abass M. Chitosan and chitosan–silver nanoparticles as adjuncts to platelet-rich plasma in canine full-thickness cutaneous wound healing. J Mater Sci Mater Med. 2026;37(1):94.
  10. Su H, Jing X, Sun H, Liu Z, Wang D, Meng L. Multifunctional nanocomposite hydrogel dressings with excellent antibacterial and angiogenesis properties for effective treatment of diabetic wounds. ACS Appl Mater Interfaces. 2025;17(30):43604–43619.
  11. A platelet-rich plasma-loaded chitosan-based hydrogel for promoting type 2 diabetes wound healing. 2026. PubMed-ID 41907419.
  12. Silver nanoparticles and platelet-rich fibrin accelerate tendon healing in donkey. Sci Rep. 2023;13.
  13. Hajtuch J et al. Effects of functionalized silver nanoparticles on aggregation of human blood platelets. Int J Nanomedicine. 2019;14.
  14. Jun EA et al. Silver nanoparticles enhance thrombus formation through increased platelet aggregation and procoagulant activity. Nanotoxicology. 2011;5(2).
  15. Protein corona on gold and silver nanoparticles. Materials Science Forum. 2018;936:42–46.
  16. Miclăuş T et al. Dynamic protein coronas revealed as a modulator of silver nanoparticle sulphidation in vitro. Nat Commun. 2016;7.
  17. Du H et al. Serum protein coating enhances the antisepsis efficacy of silver nanoparticles against multidrug-resistant Escherichia coli infections in mice. Front Microbiol. 2023;14:1153147.
  18. Cieślik-Bielecka A et al. Antibacterial activity of leukocyte- and platelet-rich plasma: an in vitro study. Biomed Res Int. 2018;2018:9471723.
  19. Mariani E et al. Leukocyte presence does not increase microbicidal activity of platelet-rich plasma in vitro. BMC Microbiol. 2015;15.
  20. Panáček A et al. Bacterial resistance to silver nanoparticles and how to overcome it. Nat Nanotechnol. 2018;13(1):65–71.
  21. Chrastina A, Schnitzer JE. Iodine-125 radiolabeling of silver nanoparticles for in vivo SPECT imaging. Int J Nanomedicine. 2010;5.
  22. Recordati C et al. Tissue distribution and acute toxicity of silver after single intravenous administration in mice: nano-specific and size-dependent effects. Part Fibre Toxicol. 2016;13.
  23. Verordnung (EU) 2017/745 über Medizinprodukte (MDR), Anhang VIII, Regel 19.
  24. Arzneimittelkommission der deutschen Ärzteschaft. Herstellung von Arzneimitteln in der ärztlichen Praxis: Auslegungshilfe zur Überwachung der erlaubnisfreien Herstellung nach § 13 (2b) AMG. Arzneiverordnung in der Praxis. 2019;(1).
  25. Arzneimittelgesetz (AMG), insbesondere § 5 (bedenkliche Arzneimittel), § 13 Abs. 2b (Ausnahme von der Herstellungserlaubnis unter bestimmten Voraussetzungen) und § 67 (Anzeigepflichten).
  26. Xu H, Huang K, Tao X. Efficacy and safety of platelet-rich plasma versus conventional care in diabetic foot ulcers: a meta-analysis of randomized controlled trials. Acta Diabetol. 2025;62(10):1585–1596.
  27. Yi Q, Huang Z, Tang B. Impact of Silver Dressings on Wound Healing Rate in Patients with Lower Extremity Ulcers: A Systematic Review and Meta-Analysis of Randomized Controlled Trials. Med Princ Pract. 2025;34(1):13–24. Epub 2024.
  28. Xie Q, Wang J, Huang G, Dai J. Silver dressings for treating diabetic foot ulcers: a systematic review and meta-analysis. J Tissue Viability. 2025;34(4):100956.
  29. Deutsche Gesellschaft für Wundheilung und Wundbehandlung e.V. et al. S3-Leitlinie 091-001: Lokaltherapie schwerheilender und/oder chronischer Wunden aufgrund von pAVK, Diabetes mellitus oder chronischer venöser Insuffizienz. Version 2.2, Stand 31.10.2023.
  30. Transfusionsgesetz (TFG), insbesondere § 7 (Anforderungen zur Entnahme), § 13 (Anforderungen an die Anwendung von Blutprodukten) und § 28 (Ausnahmen vom Anwendungsbereich).

Note for professional audiences. This article is intended for professional audiences as defined in Section 2 of the German Heilmittelwerbegesetz (HWG). It summarizes the current state of research and does not constitute a treatment or application recommendation. The choice and performance of treatment remain the responsibility of the treating healthcare professional. Research status: September 2026.

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