Literature DB >> 31218484

Mechano-Immunomodulation: Mechanoresponsive Changes in Macrophage Activity and Polarization.

Sarah Adams1, Leah M Wuescher2, Randall Worth2, Eda Yildirim-Ayan3,4.   

Abstract

In recent years, biomaterial- and scaffold-based immunomodulation strategies were implemented in tissue regeneration efforts for manipulating macrophage polarization (a.k.a. phenotype or lineage commitment, or differentiation). Yet, most of our understanding of macrophage phenotype commitment and phagocytic capacity is limited to how physical cues (extracellular matrix stiffness, roughness, and topography) and soluble chemical cues (cytokines and chemokines released from the scaffold) influence macrophage polarization. In the context of immune response-tissue interaction, the mechanical cues experienced by the residing cells within the tissue also play a critical role in macrophage polarization and inflammatory response. However, there is no compiled study discussing the effect of the dynamic mechanical environment around the tissues on macrophage polarization and the innate immune response. The aim of this comprehensive review paper is 2-fold; (a) to highlight the importance of mechanical cues on macrophage lineage commitment and function and (b) to summarize the important studies dedicated to understand how macrophage polarization changes with different mechanical loading modalities. For the first time, this review paper compiles and compartmentalizes the studies investigating the role of dynamic mechanical loading with various modalities, amplitude, and frequency on macrophage differentiation. A deeper understanding of macrophage phenotype in mechanically dominant tissues (i.e. musculoskeletal tissues, lung tissues, and cardiovascular tissues) provides mechanistic insights into the design of mechano-immunomodulatory tissue scaffold for tissue regeneration.

Entities:  

Keywords:  Anti-inflammatory; Immunomodulation; Macrophages; Mechanical strain; Mechanoimmunomodulation; Mechanotransduction; Phagocytic activity; Polarization; Pro-inflammatory; Tissue engineering

Mesh:

Substances:

Year:  2019        PMID: 31218484      PMCID: PMC7043232          DOI: 10.1007/s10439-019-02302-4

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  112 in total

1.  Biochemical and functional characterization of three activated macrophage populations.

Authors:  Justin P Edwards; Xia Zhang; Kenneth A Frauwirth; David M Mosser
Journal:  J Leukoc Biol       Date:  2006-08-11       Impact factor: 4.962

2.  Effect of uniaxial, cyclic stretch on the morphology of monocytes/macrophages in culture.

Authors:  T Matsumoto; P Delafontaine; K J Schnetzer; B C Tong; R M Nerem
Journal:  J Biomech Eng       Date:  1996-08       Impact factor: 2.097

Review 3.  Macrophages under pressure: the role of macrophage polarization in hypertension.

Authors:  Sailesh C Harwani
Journal:  Transl Res       Date:  2017-11-08       Impact factor: 7.012

4.  A novel three-dimensional tissue equivalent model to study the combined effects of cyclic mechanical strain and wear particles on the osteolytic potential of primary human macrophages in vitro.

Authors:  J B Matthews; W Mitchell; M H Stone; J Fisher; E Ingham
Journal:  Proc Inst Mech Eng H       Date:  2001       Impact factor: 1.617

5.  Device for the application of a dynamic biaxially uniform and isotropic strain to a flexible cell culture membrane.

Authors:  J L Schaffer; M Rizen; G J L'Italien; A Benbrahim; J Megerman; L C Gerstenfeld; M L Gray
Journal:  J Orthop Res       Date:  1994-09       Impact factor: 3.494

6.  Mechanics of the human hamstring muscles during sprinting.

Authors:  Anthony G Schache; Tim W Dorn; Peter D Blanch; Nicholas A T Brown; Marcus G Pandy
Journal:  Med Sci Sports Exerc       Date:  2012-04       Impact factor: 5.411

7.  Synergistic effect of particles and cyclic pressure on cytokine production in human monocyte/macrophages: proposed role in periprosthetic osteolysis.

Authors:  A McEvoy; M Jeyam; G Ferrier; C E Evans; J G Andrew
Journal:  Bone       Date:  2002-01       Impact factor: 4.398

8.  Mechanical stretch stimulates macrophage inflammatory protein-2 secretion from fetal rat lung cells.

Authors:  E Mourgeon; N Isowa; S Keshavjee; X Zhang; A S Slutsky; M Liu
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2000-10       Impact factor: 5.464

Review 9.  Understanding the Mysterious M2 Macrophage through Activation Markers and Effector Mechanisms.

Authors:  Tamás Rőszer
Journal:  Mediators Inflamm       Date:  2015-05-18       Impact factor: 4.711

10.  Evolution of the Macrophage CD163 Phenotype and Cytokine Profiles in a Human Model of Resolving Inflammation.

Authors:  Betsy J Evans; Dorian O Haskard; Gregory Sempowksi; R Clive Landis
Journal:  Int J Inflam       Date:  2013-05-02
View more
  16 in total

1.  [Research progress on the regulation of macrophage polarization by mechanical stimulation in wound healing].

Authors:  Chenlu Xu; Dan Yu; Huiyong Zhu
Journal:  Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi       Date:  2022-08-15

Review 2.  Macrophage Polarization in Response to Biomaterials for Vascularization.

Authors:  Yuqing Wang; Yubo Fan; Haifeng Liu
Journal:  Ann Biomed Eng       Date:  2021-07-19       Impact factor: 3.934

3.  Mechanobiology of Pulmonary Diseases: A Review of Engineering Tools to Understand Lung Mechanotransduction.

Authors:  Caymen Novak; Megan N Ballinger; Samir Ghadiali
Journal:  J Biomech Eng       Date:  2021-11-01       Impact factor: 2.097

4.  Complementary roles of mechanotransduction and inflammation in vascular homeostasis.

Authors:  Marcos Latorre; Bart Spronck; Jay D Humphrey
Journal:  Proc Math Phys Eng Sci       Date:  2021-01-20       Impact factor: 2.704

Review 5.  Computational modeling for cardiovascular tissue engineering: the importance of including cell behavior in growth and remodeling algorithms.

Authors:  Sandra Loerakker; Tommaso Ristori
Journal:  Curr Opin Biomed Eng       Date:  2020-09

6.  Polarized M2 macrophages induced by mechanical stretching modulate bone regeneration of the craniofacial suture for midfacial hypoplasia treatment.

Authors:  Wei Liang; Pengbing Ding; Jiaying Qian; Guan Li; Enhang Lu; Zhenmin Zhao
Journal:  Cell Tissue Res       Date:  2021-09-27       Impact factor: 5.249

Review 7.  Biomaterials-Mediated Regulation of Macrophage Cell Fate.

Authors:  Yining Liu; Tatiana Segura
Journal:  Front Bioeng Biotechnol       Date:  2020-12-11

8.  TRPV4 Plays a Role in Matrix Stiffness-Induced Macrophage Polarization.

Authors:  Bidisha Dutta; Rishov Goswami; Shaik O Rahaman
Journal:  Front Immunol       Date:  2020-12-14       Impact factor: 7.561

9.  Doxycycline and Zinc Loaded Silica-Nanofibrous Polymers as Biomaterials for Bone Regeneration.

Authors:  Manuel Toledano; Manuel Toledano-Osorio; Raquel Osorio; Álvaro Carrasco-Carmona; José-Luis Gutiérrez-Pérez; Aida Gutiérrez-Corrales; María-Angeles Serrera-Figallo; Christopher D Lynch; Daniel Torres-Lagares
Journal:  Polymers (Basel)       Date:  2020-05-25       Impact factor: 4.329

Review 10.  Scaffold-Mediated Immunoengineering as Innovative Strategy for Tendon Regeneration.

Authors:  Valentina Russo; Mohammad El Khatib; Giuseppe Prencipe; Adrián Cerveró-Varona; Maria Rita Citeroni; Annunziata Mauro; Paolo Berardinelli; Melisa Faydaver; Arlette A Haidar-Montes; Maura Turriani; Oriana Di Giacinto; Marcello Raspa; Ferdinando Scavizzi; Fabrizio Bonaventura; Liliana Liverani; Aldo R Boccaccini; Barbara Barboni
Journal:  Cells       Date:  2022-01-13       Impact factor: 6.600

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.