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Rhodobacter sp. SGA-6-6 Genome sequencing and assembly
We have employed whole genome microarray expression profiling as a discovery platform to identify genes to alter the transcript accumulation levels in SGA lines, which are triploid hybrids crossed between tetraploid wheat and diploid wheat progenitor Aegilops tauschii. Of the up-regulated genes, def...
ORGANISM(S): Aegilops tauschii x Triticum turgidum 

Small-for-gestational-age (SGA) is a globally recognized public health concern. Infants born SGA may experience metabolic disturbances. This study elucidated the key regulatory factors and mechanisms underlying catch-up growth (CUG) and metabolic homeostasis in SGA infants. High-throughput target...

2025-10-27 | MTBLS13222 | MetaboLights
Umbilical cord miRNA profile associated with catch-up growth in SGA infants
The aim of this study was to identify umbilical cord microRNA (miRNA) associated with catch-up growth in SGA infants. miRCURY LNA™ Universal RT microRNA PCR Human Panel I+II (Exiqon) were used to study the miRNA profile in umbilical cord tissue of 5 SGA infants with catch-up (SGA-CU), 5 SGA infants ...
ORGANISM(S): Homo sapiens 
2019-03-22 | GSE128694 | GEO
We have employed whole genome microarray expression profiling as a discovery platform to identify genes to alter the transcript accumulation levels in SGA plants, which are triploid hybrids crossed between tetraploid wheat and a diploid wheat relative Aegilops umbellulata. Of the up-regulated genes,...
ORGANISM(S): Triticum aestivum 
2017-01-24 | GSE93943 | GEO
Children born small for gestational age (SGA) face elevated risks of metabolic, cardiovascular, respiratory, and neurodevelopmental disorders, as well as premature mortality, yet the underlying mechanisms remain only partly understood. We analyze blood proteomic data from multiple birth cohorts to i...
ORGANISM(S): Homo sapiens (Human) 
2026-04-02 | PAD000036 | Pride

Small-for-gestational-age (SGA) is a globally recognized public health concern. Infants born SGA may experience metabolic disturbances. This study elucidated the key regulatory factors and mechanisms underlying catch-up growth (CUG) and metabolic homeostasis in SGA infants. High-throughput target...

2025-10-23 | MTBLS13163 | MetaboLights
Exome sequencing of short SGA children with IGF-I and insulin resistance. Collaboration with Professor David Dunger, University of Cambridge. Funded by NIHR.
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