Evidence map›Paper›PMID 38587452›Full record

ArticleStem cells (Dayton, Ohio)2024

Cell-Cycle-Specific Autoencoding Improves Cluster Analysis of Cycling Cardiomyocytes.

Thanh Nguyen, Yuji Nakada, Yalin Wu, Jianli Zhao, Daniel J Garry, Hesham Sadek, Jianyi Zhang

Abstract read
In one paragraph

Article in Stem cells (Dayton, Ohio), 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers, 1 of them a synthesis that pooled it.

0numbers the graph read from it
0cells of the map it votes in
6citing papers in PubMed, 1 pooled it
–field-weighted citation impact
1 · What the graph read from it

What it found

Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.

The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.

Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

6 citing papers in PubMed, 1 synthesis or guideline pooled it.

  1. Pooled it
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4 · The record

Corrections and comments

PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.

5 · Who and what money

Authors and funding

7 authors.

Thanh NguyenDepartment of Biomedical Engineering, University of Alabama at Birmingham, Birmingham, AL 35233, USA.ORCID 0000-0002-8440-1594
Yuji NakadaDepartment of Biomedical Engineering, University of Alabama at Birmingham, Birmingham, AL 35233, USA.
Yalin WuDepartment of Biomedical Engineering, University of Alabama at Birmingham, Birmingham, AL 35233, USA.
Jianli ZhaoDepartment of Biomedical Engineering, University of Alabama at Birmingham, Birmingham, AL 35233, USA.
Daniel J GarryDepartment of Medicine, School of Medicine, University of Minnesota, Minneapolis, MN 55455, USA.
Hesham SadekDepartment of Internal Medicine, University of Texas Southwestern Medical Center, Dallas, TX 75390, USA.
Jianyi ZhangDepartment of Biomedical Engineering, University of Alabama at Birmingham, Birmingham, AL 35233, USA.ORCID 0000-0002-3955-6554

Funding

Project 3 - Role of Proline Metabolism in Regulation of Mammalian Cardiomyocyte ProliferationP01HL160476 · NHLBI · UNIVERSITY OF ALABAMA AT BIRMINGHAM · PI Hesham Sadek · 2022 to 2026
$13.1M
Integrated Cellular and Tissue Engineering for Ischemic Heart DiseaseU01HL134764 · NHLBI · UNIVERSITY OF ALABAMA AT BIRMINGHAM · PI BURSAC, NENAD, KAMP, TIMOTHY J. · 2016 to 2022
$7.7M
Supplement of HL131017: Myocardial remuscularization by cardiac patch delivery of epicardial FSTL1 and CCND2 overexpressing cardiomyocytesR01HL131017 · NHLBI · UNIVERSITY OF ALABAMA AT BIRMINGHAM · PI SERPOOSHAN, VAHID, ZHANG, JIANYI · 2016 to 2025
$5.8M
Endogenous and exogenous mechanisms that promote myocardial remuscularization in post infarction LV remodelingR01HL114120 · NHLBI · UNIVERSITY OF MINNESOTA · PI ZHANG, JIANYI · 2012 to 2021
$5.6M
Cardiovascular regeneration and pioneer factorsR01HL168647 · NHLBI · UNIVERSITY OF MINNESOTA · PI Daniel J. Garry · 2023 to 2026
$2.8M
Deciphering the Neonatal Cardiac Regenerative Potential and Regulators in Large AnimalsR01HL149137 · NHLBI · UNIVERSITY OF ALABAMA AT BIRMINGHAM · PI SADEK, HESHAM, ZANGI, LIOR · 2019 to 2022
$2.5M
E2F2 and Vascular FunctionR01HL138990 · NHLBI · UNIVERSITY OF ALABAMA AT BIRMINGHAM · PI NAKADA, YUJI · 2017 to 2020
$2.3M
NHLBI NIH HHS P01 HL160476NHLBI NIH HHS R01 HL114120NHLBI NIH HHS R01 HL131017NHLBI NIH HHS R01 HL138990NHLBI NIH HHS R01 HL149137NHLBI NIH HHS R01 HL168647NHLBI NIH HHS U01 HL134764NIH HHS RO1s HL138990, HL114120, HL 131017, HL149137, P01 HL160476, and UO1 HL134764
6 · The paper itself

Abstract

backgroundOur previous analyses of cardiomyocyte single-nucleus RNA sequencing (snRNAseq) data from the hearts of fetal pigs and pigs that underwent apical resection surgery on postnatal day (P) 1 (ARP1), myocardial infarction (MI) surgery on P28 (MIP28), both ARP1 and MIP28 (ARP1MIP28), or controls (no surgical procedure or CTL) identified 10 cardiomyocyte subpopulations (clusters), one of which appeared to be primed to proliferate in response to MI. However, the clusters composed of primarily proliferating cardiomyocytes still contained noncycling cells, and we were unable to distinguish between cardiomyocytes in different phases of the cell cycle. Here, we improved the precision of our assessments by conducting similar analyses with snRNAseq data for only the 1646 genes included under the Gene Ontology term "cell cycle."

methodsTwo cardiac snRNAseq datasets, one from mice (GEO dataset number GSE130699) and one from pigs (GEO dataset number GSE185289), were evaluated via our cell-cycle-specific analytical pipeline. Cycling cells were identified via the co-expression of 5 proliferation markers (AURKB, MKI67, INCENP, CDCA8, and BIRC5).

resultsThe cell-cycle-specific autoencoder (CSA) algorithm identified 7 cardiomyocyte clusters in mouse hearts (mCM1 and mCM3-mCM8), including one prominent cluster of cycling cardiomyocytes in animals that underwent MI or Sham surgery on P1. Five cardiomyocyte clusters (pCM1, pCM3-pCM6) were identified in pig hearts, 2 of which (pCM1 and pCM4) displayed evidence of cell cycle activity; pCM4 was found primarily in hearts from fetal pigs, while pCM1 comprised a small proportion of cardiomyocytes in both fetal hearts and hearts from ARP1MIP28 pigs during the 2 weeks after MI induction, but was nearly undetectable in all other experimental groups and at all other time points. Furthermore, pseudotime trajectory analysis of snRNAseq data from fetal pig cardiomyocytes identified a pathway that began at pCM3, passed through pCM2, and ended at pCM1, whereas pCM3 was enriched for the expression of a cell cycle activator that regulates the G1/S phase transition (cyclin D2), pCM2 was enriched for an S-phase regulator (CCNE2), and pCM1 was enriched for the expression of a gene that regulates the G2M phase transition and mitosis (cyclin B2). We also identified 4 transcription factors (E2F8, FOXM1, GLI3, and RAD51) that were more abundantly expressed in cardiomyocytes from regenerative mouse hearts than from nonregenerative mouse hearts, from the hearts of fetal pigs than from CTL pig hearts, and from ARP1MIP28 pig hearts than from MIP28 pig hearts during the 2 weeks after MI induction.

conclusionsThe CSA algorithm improved the precision of our assessments of cell cycle activity in cardiomyocyte subpopulations and enabled us to identify a trajectory across 3 clusters that appeared to track the onset and progression of cell cycle activity in cardiomyocytes from fetal pigs.

Indexed as

Cell CycleMyocytes, CardiacAnimalsCell ProliferationCluster AnalysisMiceSwineautoencodercardiomyocytecell cycleheart regeneration

Identifiers

PMID38587452
PMCPMC11094391

What Socratic holds

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Registered trials

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.