The obesity-linked human lncRNA AATBC regulates adipocyte plasticity by stimulating mitochondrial dynamics and respiration
Giroud, M.; Kotschi, S.; Kwon, Y.; Le Thuc, O.; Hoffmann, A.; Gil-Lozano, M.; Karbiener, M.; Higareda-Almaraz, J. C.; Khani, S.; Tews, D.; Fischer-Posovszky, P.; Sun, W.; Dong, H.; Ghosh, A.; Wolfrum, C.; Wabitsch, M.; Virtanen, K. A.; Blüher, M.; Nielsen, S.; Zeigerer, A.; Garcia-Caceres, C.; Scheideler, M.; Herzig, S.; Bartelt, A.
Show abstract
Adipocytes are critical regulators of metabolism and energy balance. While white adipocyte dysfunction is a hallmark of obesity-associated disorders, the activation of thermogenic brown and beige adipocytes is linked to improved cardiometabolic health. As adipocytes dynamically adapt to environmental cues by functionally switching between white and thermogenic phenotypes, a molecular understanding of this adipocyte plasticity could help improving energy balance and weight loss. Here, we show that the long non-coding RNA (lncRNA) Apoptosis associated transcript in bladder cancer (AATBC) is a human-specific regulator of adipocyte plasticity. Searching for new human lncRNAs implicated in adipocyte biology we compared transcriptional profiles of human adipose tissues and cultured adipocytes and discovered that AATBC was enriched in thermogenic conditions. Using primary human adipocytes and immortalized human adipocytes we found that gain-of-function of AATBC enhanced the thermogenic phenotype whereas loss-of-function diminished this effect. The AATBC-mediated increase in mitochondrial respiration was linked to a more fragmented mitochondrial network and vice versa. While we found that AATBC is predominantly located in the nucleus, its effect on global transcription was only marginal. As AATBC is specific to humans, we expressed AATBC in adipose tissue of mice to study its systemic impact, which led to lower plasma leptin levels. Interestingly, this association was also present in human subjects, as AATBC in adipose tissue was inversely correlated with plasma leptin levels, body mass index and other measures of metabolic health. In conclusion, AATBC is a novel obesity-linked regulator of adipocyte plasticity and mitochondrial function in humans.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Single-nucleus mRNA-sequencing reveals dynamics of lipogenic and thermogenic adipocyte populations in murine brown adipose tissue in response to cold exposure 98%
- Adipocyte-specific ablation of the Ca2+ pump SERCA2 impairs whole-body metabolic function and reveals the diverse metabolic flexibility of white and brown adipose tissue. 97%
- Salt-inducible kinase inhibition promotes the adipocyte thermogenic program and adipose tissue browning 97%
Similar papers in this journal
- Reducing 14-3-314-3-3ζ expression influences adipocyte maturity and impairs function 96%
- Adipose depot-specific upregulation of Ucp1 or mitochondrial oxidative complex proteins are early consequences of genetic insulin reduction in mice 94%
- Adipose tissue protein kinase D (PKD): regulation of signalling networks and its sex-dependent effects on metabolism 94%
Similar papers in this journal
Similar papers in this journal
- Identification of a weight loss-associated causal eQTL in MTIF3 and the effects of MTIF3 deficiency on human adipocyte function 96%
- Constitutively active receptor ADGRA3 signaling induces adipose thermogenesis 96%
- A Neurogenic Signature Involving Monoamine Oxidase-A controls Human Thermogenic Adipose Tissue Development 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.