Multipotential Role of Growth Factor Mimetic Peptides for Osteochondral Tissue Engineering
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M. Szychlinska | S. Oddo | S. Conoci | S. Guglielmino | M. Rizzo | U. D'Amora | G. Calabrese | U. D’Amora | Nicole Palermo
[1] Jiayue Shi,et al. 3D-Printed Porous Scaffolds of Hydrogels Modified with TGF-β1 Binding Peptides to Promote In Vivo Cartilage Regeneration and Animal Gait Restoration. , 2022, ACS applied materials & interfaces.
[2] E. Nicolau,et al. Bioactive Cellulose Acetate Electrospun Mats as Scaffolds for Bone Tissue Regeneration , 2022, International journal of biomaterials.
[3] Karan M. Shah,et al. Strategies for Articular Cartilage Repair and Regeneration , 2021, Frontiers in Bioengineering and Biotechnology.
[4] Yan Liu,et al. Function and Mechanism of RGD in Bone and Cartilage Tissue Engineering , 2021, Frontiers in Bioengineering and Biotechnology.
[5] Huaishuang Shen,et al. A photo-crosslinked proteinogenic hydrogel enabling self-recruitment of endogenous TGF-β1 for cartilage regeneration , 2021, Smart Materials in Medicine.
[6] Xiaoliang Sun,et al. Polydopamine-Coated Poly(l-lactide) Nanofibers with Controlled Release of VEGF and BMP-2 as a Regenerative Periosteum. , 2021, ACS biomaterials science & engineering.
[7] Gang Wu,et al. Chondroinductive/chondroconductive peptides and their-functionalized biomaterials for cartilage tissue engineering , 2021, Bioactive Materials.
[8] Gerry L. Koons,et al. Bilayered, Peptide-Biofunctionalized Hydrogels for In Vivo Osteochondral Tissue Repair. , 2021, Acta biomaterialia.
[9] D. Dean,et al. Tuning Phage for Cartilage Regeneration , 2021 .
[10] S. Petralia,et al. Rapid detection of bacterial pathogens in blood through engineered phages-beads and integrated Real-Time PCR into MicroChip , 2021 .
[11] S. Petralia,et al. Antimicrobial Effect and Cytotoxic Evaluation of Mg-Doped Hydroxyapatite Functionalized with Au-Nano Rods , 2021, Molecules.
[12] S. Petralia,et al. A new Ag-nanostructured hydroxyapatite porous scaffold: Antibacterial effect and cytotoxicity study. , 2021, Materials science & engineering. C, Materials for biological applications.
[13] K. Orhan,et al. BMP-6 carrying metal organic framework-embedded in bioresorbable electrospun fibers for enhanced bone regeneration. , 2020, Materials science & engineering. C, Materials for biological applications.
[14] S. Cuzzocrea,et al. Au, Pd and maghemite nanofunctionalized hydroxyapatite scaffolds for bone regeneration , 2020, Regenerative biomaterials.
[15] L. Ambrosio,et al. Injectable Functional Biomaterials for Minimally Invasive Surgery , 2020, Advanced healthcare materials.
[16] J. Otlewski,et al. Intracellular partners of fibroblast growth factors 1 and 2 - implications for functions. , 2020, Cytokine & growth factor reviews.
[17] R. Parenti,et al. Evaluation of a Cell-Free Collagen Type I-Based Scaffold for Articular Cartilage Regeneration in an Orthotopic Rat Model , 2020, Materials.
[18] S. Cuzzocrea,et al. Innovative IgG Biomarkers Based on Phage Display Microbial Amyloid Mimotope for State and Stage Diagnosis in Alzheimer’s Disease , 2020, ACS chemical neuroscience.
[19] Johnson V. John,et al. Dual Delivery of Alendronate and E7-BMP-2 Peptide via Calcium Chelation to Mineralized Nanofiber Fragments for Alveolar Bone Regeneration. , 2020, ACS biomaterials science & engineering.
[20] B. Lu,et al. Cryogenic 3D printing of heterogeneous scaffolds with gradient mechanical strengths and spatial delivery of osteogenic peptide/TGF-β1 for osteochondral tissue regeneration , 2020, Biofabrication.
[21] N. Vispo,et al. Peptide Phage Display: Molecular Principles and Biomedical Applications , 2019, Therapeutic innovation & regulatory science.
[22] V. Lefebvre,et al. SOX9 in cartilage development and disease. , 2019, Current opinion in cell biology.
[23] J. Cooper-White,et al. Combinatorial presentation of cartilage-inspired peptides on nanopatterned surfaces enables directed differentiation of human mesenchymal stem cells towards distinct articular chondrogenic phenotypes. , 2019, Biomaterials.
[24] Jakob M. Townsend,et al. Effects of a Bioactive SPPEPS Peptide on Chondrogenic Differentiation of Mesenchymal Stem Cells , 2019, Annals of Biomedical Engineering.
[25] Andy Chi-Lung Lee,et al. A Comprehensive Review on Current Advances in Peptide Drug Development and Design , 2019, International journal of molecular sciences.
[26] L. Ambrosio,et al. Bioactivation Routes of Gelatin-Based Scaffolds to Enhance at Nanoscale Level Bone Tissue Regeneration , 2019, Front. Bioeng. Biotechnol..
[27] Jun Chen,et al. Self-assemble peptide biomaterials and their biomedical applications , 2019, Bioactive materials.
[28] B. Duan,et al. Mineralized nanofiber segments coupled with calcium-binding BMP-2 peptides for alveolar bone regeneration. , 2019, Acta biomaterialia.
[29] Giuseppe Musumeci,et al. Functional Biomolecule Delivery Systems and Bioengineering in Cartilage Regeneration. , 2019, Current pharmaceutical biotechnology.
[30] Alan J. Grodzinsky,et al. Cartilage diseases. , 2018, Matrix biology : journal of the International Society for Matrix Biology.
[31] M. Surmeneva,et al. Multifunctional Scaffolds with Improved Antimicrobial Properties and Osteogenicity Based on Piezoelectric Electrospun Fibers Decorated with Bioactive Composite Microcapsules. , 2018, ACS applied materials & interfaces.
[32] Yusuf A. Haggag. Peptides as Drug Candidates: Limitations and Recent Development Perspectives , 2018, Biomedical Journal of Scientific & Technical Research.
[33] Hongjun Wang,et al. Novel 3D Hybrid Nanofiber Aerogels Coupled with BMP‐2 Peptides for Cranial Bone Regeneration , 2018, Advanced healthcare materials.
[34] Li Duan,et al. Functional peptides for cartilage repair and regeneration. , 2018, American journal of translational research.
[35] B. Heng,et al. TGF-β1 affinity peptides incorporated within a chitosan sponge scaffold can significantly enhance cartilage regeneration. , 2018, Journal of materials chemistry. B.
[36] Xiumei Wang,et al. Biomimetic Self-Assembling Peptide Hydrogels for Tissue Engineering Applications. , 2018, Advances in experimental medicine and biology.
[37] I. Hamley. Small Bioactive Peptides for Biomaterials Design and Therapeutics. , 2017, Chemical reviews.
[38] E. Figallo,et al. In Vivo Evaluation of Biocompatibility and Chondrogenic Potential of a Cell-Free Collagen-Based Scaffold , 2017, Front. Physiol..
[39] L. Bian,et al. Self-assembled N-cadherin mimetic peptide hydrogels promote the chondrogenesis of mesenchymal stem cells through inhibition of canonical Wnt/β-catenin signaling. , 2017, Biomaterials.
[40] R. Parenti,et al. Engineered cartilage regeneration from adipose tissue derived‐mesenchymal stem cells: A morphomolecular study on osteoblast, chondrocyte and apoptosis evaluation , 2017, Experimental cell research.
[41] Y. Sun,et al. The role of laminins in cartilaginous tissues: from development to regeneration. , 2017, European cells & materials.
[42] P. Aswath,et al. Material properties of bone in the femoral head treated with ibandronate and BMP‐2 following ischemic osteonecrosis , 2017, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[43] L. Ambrosio,et al. Mesenchymal Stem Cell-Based Cartilage Regeneration Approach and Cell Senescence: Can We Manipulate Cell Aging and Function? , 2017, Tissue engineering. Part B, Reviews.
[44] Xinqiao Jia,et al. CK2.1, a bone morphogenetic protein receptor type Ia mimetic peptide, repairs cartilage in mice with destabilized medial meniscus , 2017, Stem Cell Research & Therapy.
[45] Hemanth Akkiraju,et al. CK2.1, a novel peptide, induces articular cartilage formation in vivo , 2017, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[46] Jeffrey C. Wang,et al. Bone morphogenetic protein-2 and tumor growth: Diverse effects and possibilities for therapy. , 2017, Cytokine & growth factor reviews.
[47] E. Figallo,et al. Combination of Collagen-Based Scaffold and Bioactive Factors Induces Adipose-Derived Mesenchymal Stem Cells Chondrogenic Differentiation In vitro , 2017, Front. Physiol..
[48] Heungsoo Shin,et al. Controlled Retention of BMP-2-Derived Peptide on Nanofibers Based on Mussel-Inspired Adhesion for Bone Formation. , 2017, Tissue engineering. Part A.
[49] J. Cirelli,et al. Role of Osteogenic Growth Peptide (OGP) and OGP(10–14) in Bone Regeneration: A Review , 2016, International journal of molecular sciences.
[50] P. Giannoudis,et al. The role of peptides in bone healing and regeneration: a systematic review , 2016, BMC Medicine.
[51] J. Guicheux,et al. Cartilage tissue engineering: From biomaterials and stem cells to osteoarthritis treatments. , 2016, Annals of physical and rehabilitation medicine.
[52] P. Chevallier,et al. RGD and BMP-2 mimetic peptide crosstalk enhances osteogenic commitment of human bone marrow stem cells. , 2016, Acta biomaterialia.
[53] Xi Liang,et al. BMP2 induces chondrogenic differentiation, osteogenic differentiation and endochondral ossification in stem cells , 2016, Cell and Tissue Research.
[54] Chien-Hsun Wu,et al. Advancement and applications of peptide phage display technology in biomedical science , 2016, Journal of Biomedical Science.
[55] M. Spector,et al. Collagen Type IV and Laminin Expressions during Cartilage Repair and in Late Clinically Failed Repair Tissues from Human Subjects , 2016, Cartilage.
[56] I. Pashkuleva,et al. Biomimetic supramolecular designs for the controlled release of growth factors in bone regeneration. , 2015, Advanced drug delivery reviews.
[57] M. Heliotis,et al. Successful long-term mandibular reconstruction and rehabilitation using non-vascularised autologous bone graft and recombinant human BMP-7 with subsequent endosseous implant in a patient with bisphosphonate-related osteonecrosis of the jaw. , 2015, The British journal of oral & maxillofacial surgery.
[58] S. Ribeiro,et al. Bacterial cellulose-hydroxyapatite composites with osteogenic growth peptide (OGP) or pentapeptide OGP on bone regeneration in critical-size calvarial defect model. , 2015, Journal of biomedical materials research. Part A.
[59] Mikaël M. Martino,et al. Extracellular Matrix-Inspired Growth Factor Delivery Systems for Skin Wound Healing. , 2015, Advances in wound care.
[60] Samuel I. Stupp,et al. Gel Scaffolds of BMP‐2‐Binding Peptide Amphiphile Nanofibers for Spinal Arthrodesis , 2015, Advanced healthcare materials.
[61] Xiaobin Shang,et al. Chondrogenic effect of cell-based scaffold of self-assembling peptides/PLGA-PLL loading the hTGFβ3 plasmid DNA , 2015, Journal of Materials Science: Materials in Medicine.
[62] P. Ma,et al. Injectable Peptide Decorated Functional Nanofibrous Hollow Microspheres to Direct Stem Cell Differentiation and Tissue Regeneration , 2015, Advanced functional materials.
[63] Nicholas Stephanopoulos,et al. The Powerful Functions of Peptide-Based Bioactive Matrices for Regenerative Medicine , 2014, Annals of Biomedical Engineering.
[64] Thimmaiah Govindaraju,et al. Nanoarchitectonics of biomolecular assemblies for functional applications. , 2014, Nanoscale.
[65] M. Pei,et al. Age associated communication between cells and matrix: a potential impact on stem cell-based tissue regeneration strategies , 2014, Organogenesis.
[66] Di Chen,et al. TGF-β signaling and the development of osteoarthritis , 2014, Bone Research.
[67] Neeraj Kumar,et al. Cytomodulin‐functionalized porous PLGA particulate scaffolds respond better to cell migration, actin production and wound healing in rodent model , 2014, Journal of tissue engineering and regenerative medicine.
[68] J. Renner,et al. Investigating the effect of peptide agonists on the chondrogenic differentiation of human mesenchymal stem cells using design of experiments , 2013, Biotechnology progress.
[69] Xiangyu Chu,et al. Chondrogenic effect of precartilaginous stem cells following NLS‐TAT cell penetrating peptide‐assisted transfection of eukaryotic hTGFβ3 , 2013, Journal of cellular biochemistry.
[70] Huan-Xiang Zhou,et al. Molecular structure of RADA16-I designer self-assembling peptide nanofibers. , 2013, ACS nano.
[71] M. Ueda,et al. Effects of self-assembling peptide hydrogel scaffold on bone regeneration with recombinant human bone morphogenetic protein-2. , 2013, The International journal of oral & maxillofacial implants.
[72] Deepak Goyal,et al. Evidence-based status of microfracture technique: a systematic review of level I and II studies. , 2013, Arthroscopy : the journal of arthroscopic & related surgery : official publication of the Arthroscopy Association of North America and the International Arthroscopy Association.
[73] Emmanouil D Karagiannis,et al. Rational design of a biomimetic cell penetrating peptide library. , 2013, ACS nano.
[74] L. Bian,et al. Hydrogels that mimic developmentally relevant matrix and N-cadherin interactions enhance MSC chondrogenesis , 2013, Proceedings of the National Academy of Sciences.
[75] D. Zurakowski,et al. Parathyroid hormone [1-34] improves articular cartilage surface architecture and integration and subchondral bone reconstitution in osteochondral defects in vivo. , 2013, Osteoarthritis and cartilage.
[76] S. Min,et al. Titanium Surface Coating with a Laminin-Derived Functional Peptide Promotes Bone Cell Adhesion , 2013, BioMed research international.
[77] M. Karperien,et al. A fluorogenic monolayer to detect the co-immobilization of peptides that combine cartilage targeting and regeneration. , 2013, Journal of materials chemistry. B.
[78] A. Skurvydas,et al. Comparison of osteochondral autologous transplantation, microfracture, or debridement techniques in articular cartilage lesions associated with anterior cruciate ligament injury: a prospective study with a 3-year follow-up. , 2013, Arthroscopy : the journal of arthroscopic & related surgery : official publication of the Arthroscopy Association of North America and the International Arthroscopy Association.
[79] A. Vaccaro,et al. Covalent attachment of P15 peptide to titanium surfaces enhances cell attachment, spreading, and osteogenic gene expression , 2012, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[80] J. Frith,et al. Tailored integrin-extracellular matrix interactions to direct human mesenchymal stem cell differentiation. , 2012, Stem cells and development.
[81] J. Renner,et al. Bone morphogenetic protein-derived peptide promotes chondrogenic differentiation of human mesenchymal stem cells. , 2012, Tissue engineering. Part A.
[82] Kunzheng Wang,et al. The effect of core decompression on local expression of BMP-2, PPAR-γ and bone regeneration in the steroid-induced femoral head osteonecrosis , 2012, BMC Musculoskeletal Disorders.
[83] Y. Cheon,et al. Regulation of Differentiation Potential of Human Mesenchymal Stem Cells by Intracytoplasmic Delivery of Coactivator‐Associated Arginine Methyltransferase 1 Protein Using Cell‐Penetrating Peptide , 2012, Stem cells.
[84] J. Puzas,et al. TRIP‐1: A regulator of osteoblast function , 2012, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[85] S. Stupp,et al. Mineralization of peptide amphiphile nanofibers and its effect on the differentiation of human mesenchymal stem cells. , 2012, Acta biomaterialia.
[86] M. Sanz,et al. Evaluation of an anorganic bovine-derived mineral with P-15 hydrogel bone graft: preliminary study in a rabbit cranial bone model. , 2012, Clinical oral implants research.
[87] B. Nilsson,et al. Self-assembled amino acids and dipeptides as noncovalent hydrogels for tissue engineering , 2012 .
[88] T. Pap,et al. Cooperative effects in differentiation and proliferation between PDGF-BB and matrix derived synthetic peptides in human osteoblasts , 2011, BMC musculoskeletal disorders.
[89] R. O’Keefe,et al. BMP2, but not BMP4, is crucial for chondrocyte proliferation and maturation during endochondral bone development , 2011, Journal of Cell Science.
[90] B. Mognetti,et al. Experimental Stimulation of Bone Healing with Teriparatide: Histomorphometric and Microhardness Analysis in a Mouse Model of Closed Fracture , 2011, Calcified Tissue International.
[91] S. Bellis,et al. Advantages of RGD peptides for directing cell association with biomaterials. , 2011, Biomaterials.
[92] Seung-Wuk Lee,et al. Facile growth factor immobilization platform based on engineered phage matrices , 2011 .
[93] A. Javed,et al. Osteogenic differentiation of human mesenchymal stem cells synergistically enhanced by biomimetic peptide amphiphiles combined with conditioned medium. , 2011, Acta biomaterialia.
[94] John McCafferty,et al. Beyond natural antibodies: the power of in vitro display technologies , 2011, Nature Biotechnology.
[95] P. Mullis. Cartilage and Bone Development and its Disorders , 2011 .
[96] Jyoti Pande,et al. Phage display: concept, innovations, applications and future. , 2010, Biotechnology advances.
[97] B. Guillotin,et al. Differentiation of pre-osteoblast cells on poly(ethylene terephthalate) grafted with RGD and/or BMPs mimetic peptides. , 2010, Biomaterials.
[98] Stephan Sehmisch,et al. Effect of human parathyroid hormone hPTH (1-34) applied at different regimes on fracture healing and muscle in ovariectomized and healthy rats. , 2010, Bone.
[99] D. Litchfield,et al. Casein kinase 2 beta-subunit is a regulator of bone morphogenetic protein 2 signaling. , 2010, Biophysical journal.
[100] R. Shah,et al. Supramolecular design of self-assembling nanofibers for cartilage regeneration , 2010, Proceedings of the National Academy of Sciences of the United States of America.
[101] Y. Tabata,et al. Enhanced bone regeneration via multimodal actions of synthetic peptide SVVYGLR on osteoprogenitors and osteoclasts. , 2009, Biomaterials.
[102] C. Chung,et al. Osteoblastic differentiation of human bone marrow stromal cells in self-assembled BMP-2 receptor-binding peptide-amphiphiles. , 2009, Biomaterials.
[103] Mikaël M. Martino,et al. Controlling integrin specificity and stem cell differentiation in 2D and 3D environments through regulation of fibronectin domain stability. , 2009, Biomaterials.
[104] T. Karring,et al. Calvarial bone regeneration by a combination of natural anorganic bovine-derived hydroxyapatite matrix coupled with a synthetic cell-binding peptide (PepGen): an experimental study in rats. , 2008, Clinical oral implants research.
[105] Vilmos Vécsei,et al. Combination of anorganic bovine‐derived hydroxyapatite with binding peptide does not enhance bone healing in a critical‐size defect in a rabbit model , 2008, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[106] Peter X Ma,et al. Biomimetic materials for tissue engineering. , 2008, Advanced drug delivery reviews.
[107] Andrés J. García,et al. Biomolecular surface coating to enhance orthopaedic tissue healing and integration. , 2007, Biomaterials.
[108] H. Tal,et al. Experimental intrabony and periodontal defects treated with natural mineral combined with a synthetic cell-binding Peptide in the canine: morphometric evaluations. , 2006, Journal of periodontology.
[109] A. Mikos,et al. Gene delivery strategies for cartilage tissue engineering. , 2006, Advanced drug delivery reviews.
[110] C. Chung,et al. Enhanced osteogenic promotion around dental implants with synthetic binding motif mimicking bone morphogenetic protein (BMP)-2. , 2006, Journal of biomedical materials research. Part A.
[111] P. Kessler,et al. Bioactivation of an anorganic bone matrix by P-15 peptide for the promotion of early bone formation. , 2005, Biomaterials.
[112] Jessica M Zmolik,et al. Pep-1 as a Novel Probe for the In Situ Detection of Hyaluronan , 2005, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[113] Noritaka Tokui,et al. Designing scaffolds of peptides for phage display libraries. , 2005, Journal of bioscience and bioengineering.
[114] J. Wiltfang,et al. Enhanced bone regeneration with a synthetic cell-binding peptide--in vivo results. , 2005, Biochemical and biophysical research communications.
[115] B. Mitlak,et al. Enhancement of experimental fracture-healing by systemic administration of recombinant human parathyroid hormone (PTH 1-34). , 2005, The Journal of bone and joint surgery. American volume.
[116] L. Peña,et al. Multidomain Synthetic Peptide B2A2 Synergistically Enhances BMP‐2 In Vitro , 2004, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[117] R. O’Keefe,et al. TGF-beta signaling in chondrocytes. , 2005, Frontiers in bioscience : a journal and virtual library.
[118] R. Emeson,et al. Decreased Bone Formation and Osteopenia in Mice Lacking α‐Calcitonin Gene‐Related Peptide , 2004 .
[119] Xuebin B. Yang,et al. Biomimetic collagen scaffolds for human bone cell growth and differentiation. , 2004, Tissue engineering.
[120] B. Atkinson,et al. Comparison of cell viability on anorganic bone matrix with or without P-15 cell binding peptide. , 2004, Biomaterials.
[121] Andrés J. García,et al. α2β1 integrin‐specific collagen‐mimetic surfaces supporting osteoblastic differentiation , 2004 .
[122] M. Scheer,et al. Growth and Proliferation of Human Osteoblasts on Different Bone Graft Substitutes An In Vitro Study , 2004, Implant dentistry.
[123] J. Gutmann,et al. Increased Tgf-beta1 production by rat osteoblasts in the presence of PepGen P-15 in vitro. , 2004, Journal of endodontics.
[124] D. Lawrence. Latent-TGF-β: An overview , 2001, Molecular and Cellular Biochemistry.
[125] J. Chu,et al. Synthetic peptides cytomodulin-1 (CM-1) and cytomodulin-2 (CM-2) promote collagen synthesis and wound healing in vitro , 2004, The 26th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[126] Horst Kessler,et al. RGD modified polymers: biomaterials for stimulated cell adhesion and beyond. , 2003, Biomaterials.
[127] Ying E. Zhang,et al. Smad-dependent and Smad-independent pathways in TGF-β family signalling , 2003, Nature.
[128] Yoshihisa Suzuki,et al. Activation of osteo-progenitor cells by a novel synthetic peptide derived from the bone morphogenetic protein-2 knuckle epitope. , 2003, Biochimica et biophysica acta.
[129] E. Schwarz,et al. A Phage Display Technique Identifies a Novel Regulator of Cell Differentiation* , 2003, The Journal of Biological Chemistry.
[130] A. Woolf,et al. Burden of major musculoskeletal conditions. , 2003, Bulletin of the World Health Organization.
[131] Shuguang Zhang,et al. Emerging biological materials through molecular self-assembly. , 2002, Biotechnology advances.
[132] Anja Nohe,et al. The Mode of Bone Morphogenetic Protein (BMP) Receptor Oligomerization Determines Different BMP-2 Signaling Pathways* , 2002, The Journal of Biological Chemistry.
[133] J. Whitfield,et al. Parathyroid Hormone, Its Fragments and Their Analogs for the Treatment of Osteoporosis , 2002, Treatments in endocrinology.
[134] J. Qian,et al. Design of biomimetic habitats for tissue engineering with P-15, a synthetic peptide analogue of collagen. , 1999, Tissue engineering.
[135] H J Mankin,et al. Articular cartilage: tissue design and chondrocyte-matrix interactions. , 1998, Instructional course lectures.
[136] E Ruoslahti,et al. RGD and other recognition sequences for integrins. , 1996, Annual review of cell and developmental biology.
[137] M. Fukase,et al. New actions of parathyroid hormone through its degradation. , 1992, Journal of endocrinological investigation.
[138] Andrus Viidik,et al. Injury and repair of the musculoskeletal soft tissues , 1988 .