Simulation of vaginal uterosacral ligament suspension damage, mimicking a mesh-augmented apical prolapse repair

被引:8
作者
Teixeira da Silva, Maria Elisabete [1 ]
Machado Bessa, Jorge Nuno [2 ]
Rynkevic, Rita [1 ]
Lages Parente, Marco Paulo [1 ]
Costa Mascarenhas Saraiva, Maria Teresa da Quinta E. [3 ]
Natal Jorge, Renato Manuel [1 ]
Fernandes, Antonio Augusto [1 ]
机构
[1] Univ Porto, Fac Engn, INEGI, LAETA, Rua Dr Roberto Frias S-N, P-4200465 Porto, Portugal
[2] Univ Porto, Fac Engn, Porto, Portugal
[3] Univ Porto, CHSJ EPE, Dept Obstet & Gynecol, Fac Med, Porto, Portugal
关键词
Finite element method; modeling and simulation; female pelvic cavity; apical pelvic organ prolapse; mesh implants; uterosacral ligament; PELVIC ORGAN PROLAPSE; BIOMECHANICAL PROPERTIES; FLOOR MUSCLES; BEHAVIOR; INCONTINENCE; IMPAIRMENT; MODELS; RISK;
D O I
10.1177/09544119221074567
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Synthetic implants were used for repair of anterior compartment prolapses, which can be caused by direct trauma resulting in damaged pelvic structures. The mechanical properties of these implants may cause complications, namely erosion of the mesh through the vagina. In this study, we evaluated, by modeling, the behavior of implants, during Valsalva maneuver, used to replace damaged uterosacral ligaments (USLs), mimicking a sacrocolpopexy repair. For this purpose, two synthetic implants (A(R), for prolapse repair and B(R), for Hernia repair) were uniaxially tested, and the mechanical properties obtained were incorporated in the computational models of the implants. The computational model for the implant was incorporated into the model of the female pelvic cavity, in order to mimic the USLs after its total rupture and with 90% and 50% impairment. The total rupture and impairments of the USLs, caused a variation of the supero-inferior displacement and displacement magnitude of the vagina, with higher values for the total rupture. With total rupture of the USLs, when compared to healthy USLs, supero-inferior displacement and displacement magnitude of the vagina increased by 4.98 mm (7.69 mm vs 12.67 mm) and 6.62 mm (9.38 mm vs 16.00 mm), respectively. After implantation (A(R) and B(R)) a reduction of the supero-inferior displacements of the anterior vaginal wall occurred, to values found in the case of the model without any impairment or rupture of the ligaments. The simulation was able to mimic the biomechanical response of the USLs, in response to different implants stiffnesses, which can be used in the development of novel meshes.
引用
收藏
页码:573 / 582
页数:10
相关论文
共 38 条
[1]   Women's experiences of receiving care for pelvic organ prolapse: a qualitative study [J].
Abhyankar, Purva ;
Uny, Isabelle ;
Semple, Karen ;
Wane, Sarah ;
Hagen, Suzanne ;
Wilkinson, Joyce ;
Guerrero, Karen ;
Tincello, Douglas ;
Duncan, Edward ;
Calveley, Eileen ;
Elders, Andrew ;
McClurg, Doreen ;
Maxwell, Margaret .
BMC WOMENS HEALTH, 2019, 19 (1)
[2]   Tissue mechanics, animal models, and pelvic organ prolapse: A review [J].
Abramowitch, Steven D. ;
Feola, Andrew ;
Jallah, Zegbeh ;
Moalli, Pamela A. .
EUROPEAN JOURNAL OF OBSTETRICS & GYNECOLOGY AND REPRODUCTIVE BIOLOGY, 2009, 144 :S146-S158
[3]   Computed-tomography image segmentation and 3D-reconstruction of the female pelvis for the preoperative planning of sacrocolpopexy: preliminary data [J].
Albanesi, Gianluca ;
Giannini, Andrea ;
Carbone, Marina ;
Russo, Eleonora ;
Mannella, Paolo ;
Ferrari, Vincenzo ;
Simoncini, Tommaso .
INTERNATIONAL UROGYNECOLOGY JOURNAL, 2019, 30 (05) :725-731
[4]  
Bhattarai, 2018, CONSTITUTIVE MODELIN
[5]   A computational study of organ relocation after laparoscopic pectopexy to repair posthysterectomy vaginal vault prolapse [J].
Bhattarai, A. ;
Staat, M. .
COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING-IMAGING AND VISUALIZATION, 2020, 8 (03) :277-286
[6]   Modelling of Soft Connective Tissues to Investigate Female Pelvic Floor Dysfunctions [J].
Bhattarai, Aroj ;
Staat, Manfred .
COMPUTATIONAL AND MATHEMATICAL METHODS IN MEDICINE, 2018, 2018
[7]   Role of static and dynamic MR imaging in surgical pelvic floor dysfunction [J].
Boyadzhyan, Lousine ;
Raman, Steven S. ;
Raz, Shlomo .
RADIOGRAPHICS, 2008, 28 (04) :949-967
[8]   On the Stiffness of the Mesh and Urethral Mobility: A Finite Element Analysis [J].
Brandao, Sofia ;
Parente, Marco ;
Da Roza, Thuane Huyer ;
Silva, Elisabete ;
Ramos, Isabel Maria .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2017, 139 (08)
[9]   Biomechanical study on the bladder neck and urethral positions: Simulation of impairment of the pelvic ligaments [J].
Brandao, Sofia ;
Parente, Marco ;
Mascarenhas, Teresa ;
da Silva, Ana Rita Gomes ;
Ramos, Isabel ;
Jorge, Renato Natal .
JOURNAL OF BIOMECHANICS, 2015, 48 (02) :217-223
[10]   Interaction among apical support, levator ani impairment, and anterior vaginal wall prolapse [J].
Chen, Luyun ;
Ashton-Miller, James A. ;
Hsu, Yvonne ;
DeLancey, John O. L. .
OBSTETRICS AND GYNECOLOGY, 2006, 108 (02) :324-332