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A novel TGFβ modulator that uncouples R-Smad/I-Smad-mediated negative feedback from R-Smad/ligand-driven positive
Wenchao Gu1, Rui Monteiro2, Jie Zuo1
1Weatherall Institute of Molecular Medicine, University of Oxford, John Radcliffe Hospital, Oxford, United Kingdom.
Abstract:
As some of the most widely utilised intercellular signalling molecules, transforming growth factor β (TGFβ) superfamily members play critical roles in normal development and become disrupted in human disease. Establishing appropriate levels of TGFβ signalling involves positive and negative feedback, which are coupled and driven by the same signal transduction components (R-Smad transcription factor complexes), but whether and how the regulation of the two can be distinguished are unknown. Genome-wide comparison of published ChIP-seq datasets suggests that LIM domain binding proteins (Ldbs) co-localise with R-Smads at a substantial subset of R-Smad target genes including the locus of inhibitory Smad7 (I-Smad7), which mediates negative feedback for TGFβ signalling. We present evidence suggesting that zebrafish Ldb2a binds and directly activates the I-Smad7 gene, whereas it binds and represses the ligand gene, Squint (Sqt), which drives positive feedback. Thus, the fine tuning of TGFβ signalling derives from positive and negative control by Ldb2a. Expression of ldb2a is itself activated by TGFβ signals, suggesting potential feed-forward loops that might delay the negative input of Ldb2a to the positive feedback, as well as the positive input of Ldb2a to the negative feedback. In this way, precise gene expression control by Ldb2a enables an initial build-up of signalling via a fully active positive feedback in the absence of buffering by the negative feedback. In Ldb2a-deficient zebrafish embryos, homeostasis of TGFβ signalling is perturbed and signalling is stably enhanced, giving rise to excess mesoderm and endoderm, an effect that can be rescued by reducing signalling by the TGFβ family members, Nodal and BMP. Thus, Ldb2a is critical to the homeostatic control of TGFβ signalling and thereby embryonic patterning.
Insights
LIM domain binding proteins (Ldbs) fine-tune transforming growth factor β (TGFβ) signaling by differentially regulating feedback loops. Ldb2a activates inhibitory Smad7 and represses Squint, maintaining developmental homeostasis.
Area of Science:
- Cellular and Molecular Biology
- Developmental Biology
- Genetics
Background:
- Transforming growth factor β (TGFβ) superfamily members are crucial intercellular signaling molecules in development and disease.
- TGFβ signaling regulation involves coupled positive and negative feedback loops driven by R-Smad complexes.
- Mechanisms for distinguishing regulation of positive and negative feedback in TGFβ signaling remain unclear.
Purpose of the Study:
- To investigate the role of LIM domain binding proteins (Ldbs) in regulating TGFβ signaling feedback.
- To determine how Ldb proteins distinguish between positive and negative feedback regulation.
- To elucidate the function of Ldb2a in zebrafish embryonic development and TGFβ signaling homeostasis.
Main Methods:
- Genome-wide ChIP-seq dataset analysis to identify co-localization of Ldbs with R-Smads.
- Experimental validation of Ldb2a binding and regulatory effects on I-Smad7 and Squint genes.
- Analysis of Ldb2a-deficient zebrafish embryos to assess TGFβ signaling homeostasis and developmental defects.
Main Results:
- Ldb proteins co-localize with R-Smads at target genes, including the inhibitory Smad7 (I-Smad7) locus.
- Zebrafish Ldb2a directly activates I-Smad7 (negative feedback) and represses Squint (positive feedback).
- Ldb2a deficiency in zebrafish leads to perturbed TGFβ signaling homeostasis, resulting in excess mesoderm and endoderm.
Conclusions:
- Ldb2a plays a critical role in the fine-tuning of TGFβ signaling through differential regulation of positive and negative feedback.
- Ldb2a is essential for maintaining TGFβ signaling homeostasis and proper embryonic patterning.
- Dysregulation of Ldb2a function perturbs developmental processes controlled by TGFβ signaling.
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