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Interactions Between Signaling Pathways01:19

Interactions Between Signaling Pathways

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Signaling cascades usually lack linearity. Multiple pathways interact and regulate one another, allowing cells to integrate and respond to diverse environmental stimuli.
Convergence and divergence, and cross-talk between signaling pathways
Two distinct signaling pathways can converge on a single functional unit, which may either be a single protein or a complex of proteins. The response is either functionally distinct or synergistic between the two pathways but different from the response...
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Amplifying Signals via Second Messengers01:15

Amplifying Signals via Second Messengers

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Many receptor binding ligands are hydrophilic; they do not cross the cell membrane but bind to cell-surface receptors. Thus, their message must be relayed by second messengers present in the cell cytoplasm. There are several second messenger pathways, each with its own way of relaying information. For example, the G protein-coupled receptors can activate both phosphoinositol and cyclic AMP (cAMP) second messenger pathways. The phosphoinositol pathway is active when the receptor induces...
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Amplifying Signals via Enzymatic Cascade01:22

Amplifying Signals via Enzymatic Cascade

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When a ligand binds to a cell-surface receptor, the receptor's intracellular domain changes shape, which may either activate its enzyme function or allow its binding to other molecules. The initial signal is amplified by most signal transduction pathways. This means that a single ligand molecule can activate multiple molecules of a downstream target. Proteins that relay a signal are most commonly phosphorylated at one or more sites, activating or inactivating the protein. Kinases catalyze...
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IP3/DAG Signaling Pathway01:11

IP3/DAG Signaling Pathway

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Membrane lipids such as phosphatidylinositol (PI) are precursors for several membrane-bound and soluble second messengers. Specific kinases phosphorylate PI and produce phosphorylated inositol phospholipids. One such inositol phospholipids are the  phosphatidylinositol-4,5 bisphosphate [PI(4,5)P2], present in the inner half of the lipid bilayer. Upon ligand binding, GPCR stimulates Gq proteins to turn on phospholipase Cꞵ. Activated phospholipase Cꞵ cleaves PI(4,5)P2 and...
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Assembly of Signaling Complexes01:30

Assembly of Signaling Complexes

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Multiprotein signaling complexes are formed in a dynamic process involving protein-protein interactions at the cytoplasmic domain of transmembrane receptors or enzymatic and non-enzymatic proteins associated with the receptor. These complexes ensure the activation and propagation of intracellular signals that regulate cell functions.
Interaction domains in cell signaling
Interaction domains recognize exposed features of their binding partners containing post-translationally modified sequences,...
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Calmodulin-dependent Signaling01:16

Calmodulin-dependent Signaling

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Calmodulin (CaM) is a calcium-binding protein in eukaryotes that controls various calcium-regulated cellular processes. It has four calcium-binding sites that bind calcium to form the calcium-calmodulin ( Ca2+-CaM) complex. GPCR stimulation increases the calcium levels in the cells that bind to CaM and induces a conformational change.
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...
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Related Experiment Video

Updated: Mar 24, 2026

Visualizing Protein Kinase A Activity In Head-fixed Behaving Mice Using In Vivo Two-photon Fluorescence Lifetime Imaging Microscopy
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Visualizing Protein Kinase A Activity In Head-fixed Behaving Mice Using In Vivo Two-photon Fluorescence Lifetime Imaging Microscopy

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PDE4D phosphorylation: A coincidence detector integrating multiple signaling pathways.

Delphine Mika1, Marco Conti1

  • 1Center for Reproductive Sciences, Eli and Edythe Broad Center of Regeneration Medicine and Stem Cell Research, the Department of Obstetrics, Gynecology and Reproductive Sciences, University of California, San Francisco, United States.

Cellular Signalling
|November 13, 2015
PubMed
Summary

Phosphorylation regulates phosphodiesterase 4D (PDE4D) enzyme activity and structure. This posttranslational modification impacts cyclic nucleotide signaling pathways, influencing cellular functions.

Keywords:
PDE4DPhosphodiesterasePhosphorylationPosttranslational modification

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Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cell Signaling

Background:

  • Phosphodiesterase (PDE) proteins regulate cyclic nucleotide signaling (cAMP and cGMP) in eukaryotes.
  • Mammalian PDEs comprise 11 families, with PDE4 being the largest, encoded by four genes (pde4a, pde4b, pde4c, pde4d) producing over 20 variants.
  • PDE4D is a well-studied prototype enzyme, known for its regulatory properties and induction by hormones and cAMP.

Purpose of the Study:

  • To review the regulation of PDE4D by phosphorylation.
  • To examine the impact of phosphorylation on PDE4D structure.
  • To elucidate the functional consequences of PDE4D posttranslational modifications.

Main Methods:

  • Literature review of existing biochemical, pharmacological, and physiological studies on PDE4D.
  • Analysis of structural data related to PDE4D phosphorylation sites.
  • Synthesis of functional data linked to PDE4D posttranslational modifications.

Main Results:

  • Phosphorylation is a key regulatory mechanism for PDE4D.
  • Posttranslational modifications influence PDE4D protein structure and conformation.
  • Altered PDE4D activity due to phosphorylation has significant functional consequences.

Conclusions:

  • Understanding PDE4D phosphorylation is crucial for deciphering cyclic nucleotide signaling.
  • The complex pattern of posttranslational modifications on PDE4D impacts its role in cellular processes.
  • Further research into PDE4D regulation can inform therapeutic strategies targeting PDE enzymes.