Submitted:
26 May 2024
Posted:
27 May 2024
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Abstract
Keywords:
1. Introduction
2. The Impact of PRP in PRPC
2.1. Rationale for PRP Therapies
2.2. PRP Classification
2.3. Platelet Structures and Biological Content
2.3.2. Dense Granules
2.3.3. Lysosomes
2.4. Variability in Leukocyte Presence in PRP and PRPC
2.5. Tissue Repair and Regeneration Provoked by PRP
2.5.1. Immunomodulation
2.5.2. Angiogenesis
2.5.3. Analgesic Effects
3. The Contribution of PPP in PRPC
3.1. Platelet-Poor Plasma Composition
3.1.1. Hepatocyte Growth Factor
3.1.2. Insulin-like Growth Factor-1
3.1.3. Human Albumin
3.1.4. Alpha-2-Мacroglobulin
3.1.5. Fibrinogen
| Plasma Protein Chains | Concentration (g/L) | Molecular Weight (kDa) |
| Albumin | 40 | 66 |
| IgG y-chain | 12 | 50 |
| Transferrin | 2.3 | 25 |
| IgA α-chain | 2 | 60 |
| Apolipoprotein A1 | 1.4 | 28 |
| α2-macroglobulin | 1.4 | 190 |
| α-1antitripsin | 1.1 | 52 |
| Fibrinogen α-chain | 0.95 | 95 |
| IgM µ chains | 0.75 | 75 |
| Hemopexin | 0.75 | 60 |
| Apolipoprotein B | 0.72 | 250 |
| α1-acid glycoprotein | 0.61 | 41 |
| Fibrinogen β-chain | 0.56 | 56 |
| Apolipoprotein AII | 0.3 | 110 |
| Fibrinogen y-chain | 0.5 | 50 |
| Complement C3 β-chain | 0.39 | 75 |
| Antithrombin III | 0.32 | 58 |
| Apolipoprotein AII | 0.3 | 17 |
| Haptoglobin α-chain | 0.29 | 40 |
| Pre-albumin | 0.26 | 16 |
| Ceruloplasmin | 0.21 | 132 |
| Haptoglobin β-chain | 0.14 | 20 |
| Fibronectin | 0.11 | 230 |
| Plasminogen α-chain | 0.099 | 60 |
| Complement C4 α-chain | 0.082 | 98 |
| Complement C4 β-chain | 0.061 | 73 |
| Plasminogen β-chain | 0.041 | 25 |
| Complement C4 y-chain | 0.028 | 33 |
| Other | 0.038 | N/A |
4. PRPC Characteristics
4.1. PRPC Matrix Formation
4.2. PRPC Matrix Fibrinolysis
4.3. Sustained Cellular Matrix Release
5. PRPC Matrix Biological Properties
5.1. Fibrin, Fibrinogen, and Macrophage Responses
5.2. Fibrin to Support in Immune Responses and Inflammation
5.3. Endothelial Cell Interactions with Fibrin Matrix
5.4. Role of Fibrin Matrix in Angiogenesis
5.5. Antimicrobial Activities of Fibrin(ogen)
5.6. Matrix Similarities and Differences
6. Conclusions
References
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| PRPC Component | Structure | Key Content | Main Functions |
| Platelet | α-granules |
Growth Factors: PDGF (AA-BB-AB-CC), VEGF, TGF (α-β), FGF (a-b), EGF, CTGF |
Growth factor-based regulation of tissue repair via cell proliferation, differentiation, mitogenesis, chemotaxis, epithelial repair. |
|
Adhesive Proteins: Fibronectin, vitronectin, fibrinogen, vWF, P-selectin, integrins αIIbβ, Phosphatidylserine |
Platelet aggregation, platelet-endothelial cell interaction, thrombus formation. | ||
|
Coagulation Factors: Factors IV, XI, XIII, plasminogen, plasmin, antithrombin, Tissue Factor |
Hemostasis, thrombus formation. | ||
|
Angiogenic Regulators: IL8, Thrombospondin, Angiostatin, PF-4, TIMP-1,4, MMP-1,2,9, Angiopoietin, Endostatin, SDF-1, PMP |
Angiogenesis cascades and re-establishing vasculature. | ||
|
Cytokines: IL1, IL4, IL6, TFNα, SDF-1 |
Chemotaxis, inflammatory response modulation, antimicrobial activity. | ||
|
Chemokines: RANTES, CXCL4, CXCL7, CCL2, CCL3, CCL5, β-TG |
Inflammation, antimicrobial, bactericidal activity. | ||
|
Complement Proteins: C3, C4 |
Phagocytosis, chemotaxis, platelet activation. | ||
|
Exosomes: mRNA, miRNA, CXCL4, CXCL7 |
Cell adhesion, paracrine communication, regulation of cell fate, modulation of inflammatory response. | ||
| Dense granules |
ADP, ATP, TFNα calcium, serotonin, epinephrine, pyrophosphates |
Platelet activation, vasoconstriction. | |
| Lysosomes | Collagenase, elastase, Cathepsin, α-arabinoside, β-galactosidase |
Matrix degradation, antimicrobial activity. | |
| Multivescicular Bodies | Exosomes Extracellular vesicles |
Cell proliferation, PGF transportation, platelet-cell communication. | |
| PPP | Plasma Proteins (> 300) | Albumen, Fibrinogen, Alpha-2-macroglobulin, | Blood clotting, maintain blood pressure, carrier functions, Immunity, pH regulation |
| Coagulation factors | Tissue Factor, Factor I, II, IV, V, VII, vWF | Intrinsic and extrinsic coagulation pathways, Clot formation | |
| Growth Factors | IGF-1, HGF | Bone growth, glucose transport in fat and muscle, muscle production, mitogenesis, cell growth, cell proliferation |
| Device Category |
PRPv ml |
PLTc x 103/µL |
PLTd x 106 |
WBCc x 103/µL |
MONc x 103/µL |
NEUc x 103/µL |
RBCc x 109/µL |
References |
| P-PRP | 4.8 | 170 | 887 | 0.3 | 0 | 0 | 0 | [181,182,183] |
| PRF | 5 | 205 | 1,025 | 0.1 | 0 | 0 | 0 | [5,184,185] |
| LP-PRP | 4.6 | 1,280 | 5,686 | 11.5 | 3.1 | 0.8 | 0.2 | [97,186,187] |
| LR-PRP | 6.3 | 1,603 | 9,212 | 24.7 | 4.7 | 5.4 | 1.6 | [186,188,189] |
|
Matrix Formulation |
PLTc x 106/µL |
PLTs available in matrix, x 109 |
MONc x 103/µL |
NEUc x 103/µL |
RBCc x 109/µL |
| PRF | 0,275 | 1,375 | 0 | 0 | 0 |
| LP-PRPC | 2,3 | 6,9 | 4.5 | 6.1 | 0.3 |
| LR-PRPC | 3,9 | 11,8 | 8.2 | 13.5 | 2.4 |
| Treatment Modality and Biocomponent | Biological Function of Matrix | Therapeutic Goals |
| Sealant/Glue Fibrin(ogen) Regenerative Glue Fibrin(ogen) and PRP |
Post-surgical hemostasis control Oozing tissues sealing Controllable biodegradation + ECM cellular support Anti-inflammatory Active platelet mediated angiogenesis |
Avoiding seromatous wound leakage Avoid blood loss Decrease surgical adhesions Periodontal membrane Support in surgical tissue healing Infection prevention Chronic wound & bone healing Scar reduction |
| Fibrin Matrix Fibrin(ogen) PRPC matrix Fibrin(ogen) and PRP |
Temporary matrix for invading platelets, leukocytes EC migration Cell adhesion Promotor angiogenesis process Collagen production Growth factor carrier Promotor of immunomodulation Fibrinolytic sustained release + Osteoblast stimulation Temporary matrix with embedded concentrated platelets and leukocytes Platelet growth factor reservoir Plasma growth factor reservoir Tissue ingrowth stimulation Instigator immunomodulation Cell proliferation-differentiation Organizer angiogenesis process MSC & HF stem cell paracrine effects Antimicrobial pathways Nociception A2M enzymatic processes |
Tissue repair Tissue regeneration Tissue engineering heart valves, patches Hydrogel transport Intra-osseous infiltration Nerve injuries Myogenesis Bone defect augmentation Epithelialization chronic wounds Tissue infection management Tissue repair, including nerves Tissue regeneration Skin grafting Wound healing Partial-Full thickness tendon/ligament biofiller Immunomodulation Osteoarthritis Joint protease inhibitor Joint cushioning Hair growth |
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