1
|
Murphy NF, Simpson CR, Jhund PS, Stewart
S, Kirkpatrick M, Chalmers J, MacIntyre K and McMurray JJ: A
national survey of the prevalence, incidence, primary care burden
and treatment of atrial fibrillation in Scotland. Heart.
93:606–612. 2007. View Article : Google Scholar : PubMed/NCBI
|
2
|
Darby AE and Dimarco JP: Management of
atrial fibrillation in patients with structural heart disease.
Circulation. 125:945–957. 2012. View Article : Google Scholar : PubMed/NCBI
|
3
|
Rosiak M, Dziuba M, Chudzik M,
Cygankiewicz I, Bartczak K, Drozdz J and Wranicz JK: Risk factors
for atrial fibrillation: Not always severe heart disease, not
always so ‘lonely’. Cardiol J. 17:437–442. 2010.PubMed/NCBI
|
4
|
Benjamin EJ, Levy D, Vaziri SM, D'Agostino
RB, Belanger AJ and Wolf PA: Independent risk factors for atrial
fibrillation in a population-based cohort. The Framingham Heart
Study. JAMA. 271:840–844. 1994. View Article : Google Scholar : PubMed/NCBI
|
5
|
Carabello BA: Modern management of mitral
stenosis. Circulation. 112:432–437. 2005. View Article : Google Scholar : PubMed/NCBI
|
6
|
Nattel S: New ideas about atrial
fibrillation 50 years on. Nature. 415:219–226. 2002. View Article : Google Scholar : PubMed/NCBI
|
7
|
Lam L, Lind J and Semsarian C: Application
of proteomics in cardiovascular medicine. Int J Cardiol. 108:12–19.
2006. View Article : Google Scholar : PubMed/NCBI
|
8
|
Liu H, Qin H, Chen GX, Liang MY, Rong J,
Yao JP and Wu ZK: Comparative expression profiles of microRNA in
left and right atrial appendages from patients with rheumatic
mitral valve disease exhibiting sinus rhythm or atrial
fibrillation. J Transl Med. 12:902014. View Article : Google Scholar : PubMed/NCBI
|
9
|
Deng L, Jia HL, Liu CW, Hu KH, Yin GQ, Ye
JW, He CH, Chen JH, Xie YP, Dang R, et al: Analysis of
differentially expressed proteins involved in hand, foot and mouth
disease and normal sera. Clin Microbiol Infect. 18:E188–E196. 2012.
View Article : Google Scholar : PubMed/NCBI
|
10
|
Lai LP, Lin JL, Lin CS, Yeh HM, Tsay YG,
Lee CF, Lee HH, Chang ZF, Hwang JJ, Su MJ, et al: Functional
genomic study on atrial fibrillation using cDNA microarray and
two-dimensional protein electrophoresis techniques and
identification of the myosin regulatory light chain isoform
reprogramming in atrial fibrillation. J Cardiovasc Electrophysiol.
15:214–223. 2004. View Article : Google Scholar : PubMed/NCBI
|
11
|
De Souza AI, Cardin S, Wait R, Chung YL,
Vijayakumar M, Maguy A, Camm AJ and Nattel S: Proteomic and
metabolomic analysis of atrial profibrillatory remodelling in
congestive heart failure. J Mol Cell Cardiol. 49:851–863. 2010.
View Article : Google Scholar : PubMed/NCBI
|
12
|
Modrego J, Maroto L, Tamargo J, Azcona L,
Mateos-Cáceres P, Segura A, Moreno-Herrero R, Pérez-Castellanos N,
Delpón E, Pérez-Villacastín J, et al: Comparative expression of
proteins in left and right atrial appendages from patients with
mitral valve disease at sinus rhythm and atrial fibrillation. J
Cardiovasc Electrophysiol. 21:859–868. 2010.PubMed/NCBI
|
13
|
Mayr M, Yusuf S, Weir G, Chung YL, Mayr U,
Yin X, Ladroue C, Madhu B, Roberts N, De Souza A, et al: Combined
metabolomic and proteomic analysis of human atrial fibrillation. J
Am Coll Cardiol. 51:585–594. 2008. View Article : Google Scholar : PubMed/NCBI
|
14
|
García A, Eiras S, Parguiña AF, Alonso J,
Rosa I, Salgado-Somoza A, Rico TY, Teijeira-Fernández E and
González-Juanatey JR: High-resolution two-dimensional gel
electrophoresis analysis of atrial tissue proteome reveals
down-regulation of fibulin-1 in atrial fibrillation. Int J Cardiol.
150:283–290. 2011. View Article : Google Scholar : PubMed/NCBI
|
15
|
Huang WJ, Zhou R, Zeng XR, Tan XQ, Cheng
ZH, Tang MH, Gou LT, Chen LJ, Tong AP, He Y and Yang JL:
Comparative proteomic analysis of atrial appendages from rheumatic
heart disease patients with sinus rhythm and atrial fibrillation.
Mol Med Rep. 4:655–661. 2011.PubMed/NCBI
|
16
|
Zhang P, Wang W, Wang X, Wang X, Song Y,
Han Y, Zhang J and Zhao H: Protein analysis of atrial fibrosis via
label-free proteomics in chronic atrial fibrillation patients with
mitral valve disease. PLoS One. 8:e602102013. View Article : Google Scholar : PubMed/NCBI
|
17
|
Zhu H, Zhang W, Zhong M, Zhang G and Zhang
Y: Differential gene expression during atrial structural remodeling
in human left and right atrial appendages in atrial fibrillation.
Acta Biochim Biophys Sin (Shanghai). 43:535–541. 2011. View Article : Google Scholar : PubMed/NCBI
|
18
|
Park JH, Lee JS, Ko YG, Lee SH, Lee BS,
Kang SM, Chang BC and Pak HN: Histological and biochemical
comparisons between right atrium and left atrium in patients with
mitral valvular atrial fibrillation. Korean Circ J. 44:233–242.
2014. View Article : Google Scholar : PubMed/NCBI
|
19
|
Embi AA, Scherlag BJ and Ritchey JW:
Glycogen and the propensity for atrial fibrillation: Intrinsic
anatomic differences in glycogen in the left and right atria in the
goat heart. N Am J Med Sci. 6:510–515. 2014. View Article : Google Scholar : PubMed/NCBI
|
20
|
John B, Stiles MK, Kuklik P, Chandy ST,
Young GD, Mackenzie L, Szumowski L, Joseph G, Jose J, Worthley SG,
et al: Electrical remodelling of the left and right atria due to
rheumatic mitral stenosis. Eur Heart J. 29:2234–2243. 2008.
View Article : Google Scholar : PubMed/NCBI
|
21
|
Tai CT, Lo LW, Lin YJ and Chen SA:
Arrhythmogenic difference between the left and right atria in a
canine ventricular pacing-induced heart failure model of atrial
fibrillation. Pacing Clin Electrophysiol. 35:188–195. 2012.
View Article : Google Scholar : PubMed/NCBI
|
22
|
Li D, Zhang L, Kneller J and Nattel S:
Potential ionic mechanism for repolarization differences between
canine right and left atrium. Circ Res. 88:1168–1175. 2001.
View Article : Google Scholar : PubMed/NCBI
|
23
|
Chen J, Mandapati R, Berenfeld O, Skanes
AC, Gray RA and Jalife J: Dynamics of wavelets and their role in
atrial fibrillation in the isolated sheep heart. Cardiovasc Res.
48:220–232. 2000. View Article : Google Scholar : PubMed/NCBI
|
24
|
Liu W, Zhou XW, Liu S, Hu K, Wang C, He Q
and Li M: Calpain-truncated CRMP-3 and −4 contribute to potassium
deprivation-induced apoptosis of cerebellar granule neurons.
Proteomics. 9:3712–3728. 2009. View Article : Google Scholar : PubMed/NCBI
|
25
|
Pang J, Liu WP, Liu XP, Li LY, Fang YQ,
Sun QP, Liu SJ, Li MT, Su ZL and Gao X: Profiling protein markers
associated with lymph node metastasis in prostate cancer by
DIGE-based proteomics analysis. J Proteome Res. 9:216–226. 2010.
View Article : Google Scholar : PubMed/NCBI
|
26
|
Fu H, Li W, Liu Y, Lao Y, Liu W, Chen C,
Yu H, Lee NT, Chang DC, Li P, et al: Mitochondrial proteomic
analysis and characterization of the intracellular mechanisms of
bis(7)-tacrine in protecting against glutamate-induced
excitotoxicity in primary cultured neurons. J Proteome Res.
6:2435–2446. 2007. View Article : Google Scholar : PubMed/NCBI
|
27
|
Jin S, Shen JN, Guo QC, Zhou JG, Wang J,
Huang G, Zou CY, Yin JQ, Liu SJ, Liu W, et al: 2-D DIGE and
MALDI-TOF-MS analysis of the serum proteome in human osteosarcoma.
Proteomics Clin Appl. 1:272–285. 2007. View Article : Google Scholar : PubMed/NCBI
|
28
|
Tang ZX, Chen GX, Liang MY, Rong J, Yao
JP, Yang X and Wu ZK: Selective antegrade cerebral perfusion
attenuating the TLR4/NF-kB pathway during deep hypothermia
circulatory arrest in a pig model. Cardiology. 128:243–250.
2014.PubMed/NCBI
|
29
|
Zrenner B, Ndrepepa G, Karch MR, Schneider
MA, Schreieck J, Schömig A and Schmitt C: Electrophysiologic
characteristics of paroxysmal and chronic atrial fibrillation in
human right atrium. J Am Coll Cardiol. 38:1143–1149. 2001.
View Article : Google Scholar : PubMed/NCBI
|
30
|
Huang JL, Lin YJ, Lee PC, Chang HY,
Hartono B, Lo LW, Chang SL, Hu YF, Suenari K, Li CH, et al: Right
atrial substrate remodeling and atrioventricular node conduction
properties in patients with paroxysmal atrial fibrillation. Int J
Cardiol. 158:447–449. 2012. View Article : Google Scholar : PubMed/NCBI
|
31
|
Casaclang-Verzosa G, Gersh BJ and Tsang
TS: Structural and functional remodeling of the left atrium:
Clinical and therapeutic implications for atrial fibrillation. J Am
Coll Cardiol. 51:1–11. 2008. View Article : Google Scholar : PubMed/NCBI
|
32
|
Matsuyama TA, Tanaka H, Adachi T, Jiang Y,
Ishibashi-Ueda H and Takamatsu T: Intrinsic left atrial
histoanatomy as the basis for reentrant excitation causing atrial
fibrillation/flutter in rats. Heart Rhythm. 10:1342–1348. 2013.
View Article : Google Scholar : PubMed/NCBI
|
33
|
Calò L, Lamberti F, Loricchio ML, De Ruvo
E, Colivicchi F, Bianconi L, Pandozi C and Santini M: Left atrial
ablation versus biatrial ablation for persistent and permanent
atrial fibrillation: A prospective and randomized study. J Am Coll
Cardiol. 47:2504–2512. 2006. View Article : Google Scholar : PubMed/NCBI
|
34
|
Kim JB, Bang JH, Jung SH, Choo SJ, Chung
CH and Lee JW: Left atrial ablation versus biatrial ablation in the
surgical treatment of atrial fibrillation. Ann Thorac Surg.
92:1397–1404; discussion 1404–1405. 2011. View Article : Google Scholar : PubMed/NCBI
|
35
|
Jiang Z, Ma N, Yin H, Ding F, Liu H and
Mei J: Biatrial ablation versus limited right atrial ablation for
atrial fibrillation associated with atrial septal defect in adults.
Surg Today. 45:858–863. 2015. View Article : Google Scholar : PubMed/NCBI
|
36
|
Cooley N, Cowley MJ, Lin RC, Marasco S,
Wong C, Kaye DM, Dart AM and Woodcock EA: Influence of atrial
fibrillation on microRNA expression profiles in left and right
atria from patients with valvular heart disease. Physiol Genomics.
44:211–219. 2012. View Article : Google Scholar : PubMed/NCBI
|