An estimation of the biomechanical properties of the continent and incontinent woman bladder via inverse finite element analysis

被引:2
|
作者
Silva, Maria Elisabete Teixeira da [1 ,7 ]
Pinheiro, Fabio Andre Teixeira [2 ]
Ferreira, Nuno Miguel [1 ]
Brandao, Fernanda Sofia Quintela da Silva [3 ,4 ]
Martins, Pedro Alexandre Lopes de Sousa [5 ]
Parente, Marco Paulo Lages [1 ]
Mascarenhas Saraiva, Maria Teresa da Quinta e Costa [6 ]
Fernandes, Antonio Augusto [1 ]
Natal Jorge, Renato Manuel [1 ]
机构
[1] Univ Porto, Fac Engn, LAETA, INEGI, Porto, Portugal
[2] Inst Biomed Sci Abel Salazar, LAETA, INEGI, Porto, Portugal
[3] Polytech Hlth Inst North, Vale Ave Higher Sch Hlth, Dept Diagnost & Therapeut Technol, CESPU, Porto, Portugal
[4] Polytech Hlth Inst North, Vale Ave Higher Sch Hlth, Dept Diagnost & Therapeut Technol, H2M Hlth & Human Movement Res Unit, Porto, Portugal
[5] Univ Zaragoza, ARAID, I3A, Zaragoza, Spain
[6] Univ Porto, Fac Med, Ctr Hospitalar Sao Joao EPE, Dept Gynecol & Obstet, Porto, Portugal
[7] Univ Porto, Fac Engn, LAETA, INEGI, Rua Dr,Roberto Frias 400, P-4200465 Porto, Portugal
关键词
Bladder; stress urinary incontinence; intra-abdominal pressure; material parameters; inverse finite element analysis; STRESS URINARY-INCONTINENCE; PELVIC FLOOR; TRANSPERINEAL; ULTRASOUND; BEHAVIOR; COLLAGEN; OBESITY; MODEL; NECK; RAT;
D O I
10.1177/09544119241237356
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Graphical abstract Stress urinary incontinence often results from pelvic support structures' weakening or damage. This dysfunction is related to direct injury of the pelvic organ's muscular, ligamentous or connective tissue structures due to aging, vaginal delivery or increase of the intra-abdominal pressure, for example, defecation or due to obesity. Mechanical changes alter the soft tissues' microstructural composition and therefore may affect their biomechanical properties. This study focuses on adapting an inverse finite element analysis to estimate the in vivo bladder's biomechanical properties of two groups of women (continent group (G1) and incontinent group (G2)). These properties were estimated based on MRI, by comparing measurement of the bladder neck's displacements during dynamic MRI acquired in Valsalva maneuver with the results from inverse analysis. For G2, the intra-abdominal pressure was adjusted after applying a 95% impairment to the supporting structures. The material parameters were estimated for the two groups using the Ogden hyperelastic constitutive model. Finite element analysis results showed that the bladder tissue of women with stress urinary incontinence have the highest stiffness (alpha 1 = 0.202 MPa and mu 1 = 7.720 MPa) approximately 47% higher when compared to continent women. According to the bladder neck's supero-inferior displacement measured in the MRI, the intra-abdominal pressure values were adjusted for the G2, presenting a difference of 20% (4.0 kPa for G1 and 5.0 kPa for G2). The knowledge of the pelvic structures' biomechanical properties, through this non-invasive methodology, can be crucial in the choice of the synthetic mesh to treat dysfunction when considering personalized options.
引用
收藏
页码:598 / 607
页数:10
相关论文
共 50 条
  • [21] On finite element analysis of an inverse problem in elasticity
    Nicholson, David W.
    INVERSE PROBLEMS IN SCIENCE AND ENGINEERING, 2012, 20 (05) : 735 - 748
  • [22] The biomechanical study of cervical spine: A Finite Element Analysis
    Manickam, Pechimuthu Susai
    Roy, Sandipan
    INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2022, 45 (01): : 89 - 95
  • [23] Biomechanical finite element analysis of the developing craniocervical junction
    Brockmeyer, Douglas L.
    Ellis, Ben
    Phuntsok, Rinchen
    JOURNAL OF NEUROSURGERY, 2018, 128 (04) : 29 - 29
  • [24] Biomechanical Evaluation of Syndesmotic Screw Design via Finite Element Analysis and Taguchi's Method
    Serhan, Mehmet
    Verim, Ozgur
    Eroglu, Mehmet
    Altinel, Levent
    Gokce, Baris
    Tasgetiren, Suleyman
    JOURNAL OF THE AMERICAN PODIATRIC MEDICAL ASSOCIATION, 2015, 105 (01) : 14 - 21
  • [25] Analysis of chest injury in frontal impact via finite element modelling based on biomechanical experiment
    Xiao, Sen
    Yang, Jikuang
    Xiao, Zhi
    Crandall, Jeff R.
    Lixue Xuebao/Chinese Journal of Theoretical and Applied Mechanics, 2017, 49 (01): : 191 - 201
  • [26] Statistical finite element model for bone shape and biomechanical properties
    Querol, Laura Belenguer
    Buchler, Philippe
    Rueckert, Daniel
    Nolte, Lutz P.
    Ballester, Miguel A. Gonzalez
    MEDICAL IMAGE COMPUTING AND COMPUTER-ASSISTED INTERVENTION - MICCAI 2006, PT 1, 2006, 4190 : 405 - 411
  • [27] Comparison of the biomechanical properties of internal fixation materials for zygomaticomaxillary complex fractures, A finite element analysis
    Zeng, Xueying
    Li, Yang
    Sun, Hetian
    Li, Yan
    Kikkawa, Don O.
    Lu, Wei
    JOURNAL OF STOMATOLOGY ORAL AND MAXILLOFACIAL SURGERY, 2024, 125 (05)
  • [28] Biomechanical Consequences of the Elastic Properties of Dental Implant Alloys on the Supporting Bone: Finite Element Analysis
    Perez-Pevida, Esteban
    Brizuela-Velasco, Aritza
    Chavarri-Prado, David
    Jimenez-Garrudo, Antonio
    Sanchez-Lasheras, Fernando
    Solaberrieta-Mendez, Eneko
    Dieguez-Pereira, Markel
    Fernandez-Gonzalez, Felipe J.
    Dehesa-Ibarra, Borja
    Monticelli, Francesca
    BIOMED RESEARCH INTERNATIONAL, 2016, 2016
  • [29] Inverse method to determine mechanical properties of thin film by nanoindentation and finite element analysis
    Baek, Dong-Cheon
    Lee, Soon-Bok
    Experimental Mechanics in Nano and Biotechnology, Pts 1 and 2, 2006, 326-328 : 219 - 222
  • [30] CHARACTERIZATION OF MECHANICAL PROPERTIES BY FINITE ELEMENT METHOD INVERSE ANALYSIS COMBINED WITH INDENTATION TEST
    Isaza, Jesica
    Mariaka, Isabela
    Ramirez, Juan
    DYNA-COLOMBIA, 2013, 80 (179): : 126 - 133