Literature DB >> 34592837

Implementing Biological Pacemakers: Design Criteria for Successful.

Elizabeth R Komosa1,2, David W Wolfson3, Michael Bressan4,5, Hee Cheol Cho3,6, Brenda M Ogle1,2,7,8,9,10.   

Abstract

Each heartbeat that pumps blood throughout the body is initiated by an electrical impulse generated in the sinoatrial node (SAN). However, a number of disease conditions can hamper the ability of the SAN's pacemaker cells to generate consistent action potentials and maintain an orderly conduction path, leading to arrhythmias. For symptomatic patients, current treatments rely on implantation of an electronic pacing device. However, complications inherent to the indwelling hardware give pause to categorical use of device therapy for a subset of populations, including pediatric patients or those with temporary pacing needs. Cellular-based biological pacemakers, derived in vitro or in situ, could function as a therapeutic alternative to current electronic pacemakers. Understanding how biological pacemakers measure up to the SAN would facilitate defining and demonstrating its advantages over current treatments. In this review, we discuss recent approaches to creating biological pacemakers and delineate design criteria to guide future progress based on insights from basic biology of the SAN. We emphasize the need for long-term efficacy in vivo via maintenance of relevant proteins, source-sink balance, a niche reflective of the native SAN microenvironment, and chronotropic competence. With a focus on such criteria, combined with delivery methods tailored for disease indications, clinical implementation will be attainable.

Entities:  

Keywords:  cell differentiation; cellular reprogramming; heart rate; pacemaker, artificial; sinoatrial node; stem cell niche

Mesh:

Year:  2021        PMID: 34592837      PMCID: PMC8530973          DOI: 10.1161/CIRCEP.121.009957

Source DB:  PubMed          Journal:  Circ Arrhythm Electrophysiol        ISSN: 1941-3084


  98 in total

1.  The sinus venosus progenitors separate and diversify from the first and second heart fields early in development.

Authors:  Mathilda T M Mommersteeg; Jorge N Domínguez; Cornelia Wiese; Julia Norden; Corrie de Gier-de Vries; John B E Burch; Andreas Kispert; Nigel A Brown; Antoon F M Moorman; Vincent M Christoffels
Journal:  Cardiovasc Res       Date:  2010-01-28       Impact factor: 10.787

2.  Chronic performance of a leadless cardiac pacemaker: 1-year follow-up of the LEADLESS trial.

Authors:  Reinoud E Knops; Fleur V Y Tjong; Petr Neuzil; Johannes Sperzel; Marc A Miller; Jan Petru; Jaroslav Simon; Lucie Sediva; Joris R de Groot; Srinivas R Dukkipati; Jacob S Koruth; Arthur A M Wilde; Josef Kautzner; Vivek Y Reddy
Journal:  J Am Coll Cardiol       Date:  2015-04-21       Impact factor: 24.094

3.  Heterogeneous expression of connexins in rabbit sinoatrial node cells: correlation between connexin isotype and cell size.

Authors:  Haruo Honjo; Mark R Boyett; Steven R Coppen; Yoshiko Takagishi; Tobias Opthof; Nicholas J Severs; Itsuo Kodama
Journal:  Cardiovasc Res       Date:  2002-01       Impact factor: 10.787

4.  Pacemaker cell types in the rabbit sinus node: a correlative ultrastructural and electrophysiological study.

Authors:  M A Masson-Pévet; W K Bleeker; E Besselsen; B W Treytel; H J Jongsma; L N Bouman
Journal:  J Mol Cell Cardiol       Date:  1984-01       Impact factor: 5.000

5.  Canonical Wnt5b Signaling Directs Outlying Nkx2.5+ Mesoderm into Pacemaker Cardiomyocytes.

Authors:  Jie Ren; Peidong Han; Xuanyi Ma; Elie N Farah; Joshua Bloomekatz; Xin-Xin I Zeng; Ruilin Zhang; Megan M Swim; Alec D Witty; Hannah G Knight; Rima Deshpande; Weizhe Xu; Deborah Yelon; Shaochen Chen; Neil C Chi
Journal:  Dev Cell       Date:  2019-08-08       Impact factor: 12.270

Review 6.  A coupled SYSTEM of intracellular Ca2+ clocks and surface membrane voltage clocks controls the timekeeping mechanism of the heart's pacemaker.

Authors:  Edward G Lakatta; Victor A Maltsev; Tatiana M Vinogradova
Journal:  Circ Res       Date:  2010-03-05       Impact factor: 17.367

7.  Wild-type and mutant HCN channels in a tandem biological-electronic cardiac pacemaker.

Authors:  Annalisa Bucchi; Alexei N Plotnikov; Iryna Shlapakova; Peter Danilo; Yelena Kryukova; Jihong Qu; Zhongju Lu; Huilin Liu; Zongming Pan; Irina Potapova; Bruce KenKnight; Steven Girouard; Ira S Cohen; Peter R Brink; Richard B Robinson; Michael R Rosen
Journal:  Circulation       Date:  2006-08-21       Impact factor: 29.690

Review 8.  New Approaches to Biological Pacemakers: Links to Sinoatrial Node Development.

Authors:  Vasanth Vedantham
Journal:  Trends Mol Med       Date:  2015-11-20       Impact factor: 11.951

9.  Electromechanical integration of cardiomyocytes derived from human embryonic stem cells.

Authors:  Izhak Kehat; Leonid Khimovich; Oren Caspi; Amira Gepstein; Rona Shofti; Gil Arbel; Irit Huber; Jonathan Satin; Joseph Itskovitz-Eldor; Lior Gepstein
Journal:  Nat Biotechnol       Date:  2004-09-26       Impact factor: 54.908

10.  Engineered Cardiac Pacemaker Nodes Created by TBX18 Gene Transfer Overcome Source-Sink Mismatch.

Authors:  Sandra I Grijalva; Jin-Mo Gu; Jun Li; Natasha Fernandez; Jinqi Fan; Jung Hoon Sung; Seung Yup Lee; Conner Herndon; Erin M Buckley; Sung-Jin Park; Flavio H Fenton; Hee Cheol Cho
Journal:  Adv Sci (Weinh)       Date:  2019-09-30       Impact factor: 16.806

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  1 in total

1.  A single cell transcriptional roadmap of human pacemaker cell differentiation.

Authors:  Alexandra Wiesinger; Jiuru Li; Lianne Fokkert; Priscilla Bakker; Arie O Verkerk; Vincent M Christoffels; Gerard J J Boink; Harsha D Devalla
Journal:  Elife       Date:  2022-10-11       Impact factor: 8.713

  1 in total

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