The influence of Simvastatin carried by Chitosan nanoparticle on bone regeneration using Masson’s Trichrome histochemical stain

Main Article Content

Muna A Alsaeed
https://orcid.org/0009-0008-6217-7211
Nada MH Al-Ghaban
https://orcid.org/0000-0002-9969-2021
Adnan karaibrahimoğlu
https://orcid.org/0000-0002-8277-0281

Abstract

Background: Due to the complicated and time-consuming physiological procedure of bone healing, certain graft materials have been frequently used to enhance the reconstruction of the normal bone architecture. However, owing to the limitations of these graft materials, some pharmaceutical alternatives are considered instead.  Chitosan is a biopolymer with many distinguishing characteristics that make it one of the best materials to be used as a drug delivery system for simvastatin. Simvastatin is a cholesterol lowering drug, and an influencer in bone formation process, because it stimulates osteoblasts differentiation, bone morphogenic protein 2, and vascular endothelial growth factor. Objectives: histological, histochemical and histomorphometrical analyses were carried out to evaluate the  effect of local application of chitosan simvastatin nanoparticles (ChSimN) on bone healing. Materials and Methods: New Zealand rabbits (n=14) were used in this study.  Two defects were made: one on the right side (the experimental side) that received ChSimN and the other one on the left side (the control side), which left to heal spontaneously. Seven rabbits were sacrificed after 2 weeks of the experiments, while the others after 4 weeks.  Bone samples were taken for histological and histomorphometric study after the sacrifice. Results: The histological study, using both H&E and Masson’s Trichrome stain, revealed that the ChSimN group recorded an increased amount of bone formation at both time points. Histomorphometrical analysis recorded a significant increment in bone marrow and trabecular areas in the ChSimN group. Conclusion: ChSimN had a pronounced effect on bone formation.

Downloads

Download data is not yet available.

Article Details

Section

Research Articles

Author Biographies

Muna A Alsaeed , Department of Oral Diagnosis, College of Dentistry University of Baghdad, Baghdad; Iraq

Department of Oral Diagnosis, College of Dentistry University of Baghdad, Baghdad; Iraq

Nada MH Al-Ghaban, Department of Oral Diagnosis, College of Dentistry University of Baghdad, Baghdad; Iraq

Department of Oral Diagnosis, College of Dentistry University of Baghdad, Baghdad; Iraq

Adnan karaibrahimoğlu, Department of Biostatistics and Medical informatics, College of Medicine Süleyman Demirel University,Isparta, Turkey

Department of Biostatistics and Medical informatics, College of Medicine Süleyman Demirel University,Isparta, Turkey

How to Cite

1.
Alsaeed MA, Al-Ghaban NM, karaibrahimoğlu A. The influence of Simvastatin carried by Chitosan nanoparticle on bone regeneration using Masson’s Trichrome histochemical stain. J Bagh Coll Dent [Internet]. 2023 Dec. 15 [cited 2024 Dec. 26];35(4):65-74. Available from: https://jbcd.uobaghdad.edu.iq/index.php/jbcd/article/view/3516

References

Jiang F, Yin F, Lin Y, Xia W, Zhou L, Pan C, et al. The promotion of bone regeneration through CS/GP-CTH/antagomir-133a/b sustained release system. Nanomedicine. 2020; 24, 102116.

Jafernik K, Ładniak A, Blicharska E, Czarnek K, Ekiert H, Wiącek AE, et al. Chitosan-Based Nanoparticles as Effective Drug Delivery Systems-A review. Molecules. 2023; 28.

Elkomy MH, Ali AA, Eid HM. Chitosan on the surface of nanoparticles for enhanced drug delivery: A comprehensive review. J Control Release. 2022; 351, 923-940.

Mohammed HJ, Zaidan, TF. Taste Detection Thresholds in Relation to Salivary and Serum Zinc in Patients on Simvastatin Treatment. J Bagh Coll Dent. 2019; 31, 25-31.

Garrett IR, Gutierrez G, Mundy GR. Statins and bone formation. Curr Pharm Des. 2001; 7, 715-736.

Papadimitriou K, Karkavelas G, Vouros I, Kessopoulou E, Konstantinidis A. Effects of local application of simvastatin on bone regeneration in femoral bone defects in rabbit. J Craniomaxillofac Surg. 2015; 43, 232-237.

Mundy G, Garrett R, Harris S, Chan J, Chen D, Rossini G, et al. Stimulation of bone formation in vitro and in rodents by statins. Science. 1999; 286, 1946-1949.

Delan W, Elsaadany B, Fares A, ElMeshad A, Mamdouh W, Zakaria M. Histomorphometric analysis of bone formation after using simvastatin chitosan nanoparticles as a local delivery system in periodontal bony defects in rabbits. ADJC. 2021; 3, 109-119.

Mohamed IF, Ghani BA, Fatalla AA. Histological Evaluation of the Effect of Local Application of Punica granatum Seed Oil on Bone Healing. Int J Biomater. 2022; 4266589.

AL-Ghaban NM., Jasem GH. Histomorphometric evaluation of the effects of local application of red cloveroil (trifolium pratense) on bone healing in rats. J Bagh Coll Dent. 2020; 32, 26-31.

Fadhil E, Dosh RH, Wally ZJ, Haider J. Histological evaluation of the effects of bone morphogenetic protein 9 and angiopoietin 1 on bone healing. J Taibah Univ Med Sci. 2023; 18, 954-963.

Collins TJ. ImageJ for microscopy. Bio Techniques. 2007; 43, S25-S30.

Amini AR, Laurencin CT, Nukavarapu SP. Bone tissue engineering: recent advances and challenges. Crit Rev Biomed Eng. 2012; 40, 363-408.

BaoLin G, Ma PX. Synthetic biodegradable functional polymers for tissue engineering: a brief review. Sci China Chem. 2014; 57, 490-500.

Langer R, Vacanti JP. Tissue engineering. Science. 1993; 260, 920-926.

Liu M, Zhang Y, Wu C, Xiong S, Zhou C. Chitosan/halloysite nanotubes bionanocomposites: Structure, mechanical properties and biocompatibility. Int J Biol Macromol. 2012; 51, 566-575.

Ghadri N, Anderson KM, Adatrow P, Stein SH, Su H, Garcia-Godoy F,et al. Evaluation of bone regeneration of simvastatin loaded chitosan nanofiber membranes in rodent calvarial defects. jbnb. 2018; 9, 210.

Yamashita M, Otsuka F, Mukai T, Otani H, Inagaki K, Miyoshi T, et al. Simvastatin antagonizes tumor necrosis factor-α inhibition of bone morphogenetic proteins-2-induced osteoblast differentiation by regulating Smad signaling and Ras/Rho-mitogen-activated protein kinase pathway. J Endocrinol. 2008; 196, 601-613.

Stübinger S, Dard M. The rabbit as experimental model for research in implant dentistry and related tissue regeneration. J Invest Surg. 2013; 26, 266-282.

Lundgren A, Sennerby L, Lundgren D. An experimental rabbit model for jaw-bone healing. Int J Oral Maxillofac Surg. 1997; 26, 461-464.

Delan WK, Zakaria M, Elsaadany B, ElMeshad AN, Mamdouh W, Fares AR. Formulation of simvastatin chitosan nanoparticles for controlled delivery in bone regeneration: Optimization using Box-Behnken design, stability and in vivo study. Int J Pharm. 2020; 577, 119038.

Xue Y, Wu M, Liu Z, Song J, Luo S, Li H, et al. In vitro and in vivo evaluation of chitosan scaffolds combined with simvastatin-loaded nanoparticles for guided bone regeneration. J Mater Sci Mater Med. 2019; 30, 47.

AL-Mashhadi ZAJ, AL-Ghaban NM. Local Evaluation of Chitosan and β-Tricalcium Phosphate alone and Combination in Bone Defect of Rabbit by Histological and Histomorphometric Analysis. J Res Med Dent Sci. 2022; 10, 171-178.

Oryan A, Sahvieh S. Effectiveness of chitosan scaffold in skin, bone and cartilage healing. Int J Biol Macromol. 2017; 104, 1003-1011.

Amal I, Soebroto H, Puruhito. Comparison of bone wax and chitosan usage on post-sternotomy bone healing. Asian Cardiovasc Thorac Ann. 2021; 29, 203-207.

Diniz JA, Barbirato DDS, do Nascimento EHL, Pontual ADA, Dourado ACAG, Laureano Filho JR. Tomographic evaluation of the effect of simvastatin topical use on alveolar bone microarchitecture, pain and swelling after mandibular third molar extraction: a randomized controlled trial. Clin Oral Investig. 2022; 26, 3533-3545.

Moshiri A, Sharifi AM, Oryan A. Role of Simvastatin on fracture healing and osteoporosis: a systematic review on in vivo investigations. Clin Exp Pharmacol Physiol. 2016; 43, 659-684.

Murtaza G. Solubility enhancement of simvastatin: a review. Acta Pol Pharm 2012, 69, 581-590.

Lee JY, Nam SH, Im SY, Park YJ, Lee YM, Seol YJ, et al. Enhanced bone formation by controlled growth factor delivery from chitosan-based biomaterials. J Control Release. 2002; 78, 187-197.

Sakoda K., Yamamoto M, Negishi Y, Liao J, Node K, Izumi Y. Simvastatin decreases IL-6 and IL-8 production in epithelial cells. J Dent Res. 2006; 85, 520-523.

Similar Articles

You may also start an advanced similarity search for this article.