3.11
Como muitos ligandos que se ligam a receptores são hidrofílicos, eles não atravessam a membrana celular e, portanto, a sua mensagem deve ser transmiti…
- Quando a superfície da célula recebe mensagens, mensageiros secundários passam essas mensagens para moléculas específicas, para criar uma resposta. Uma importante cascata de sinalização intracelular é o trifosfato de inositol diacilglicerol ou via IP3/DAG. Na superfície da célula, hormônios e neurotransmissores ligam-se a receptores unidos à proteína G que ativam enzimas como a fosfolipase C.
Esta enzima hidrolisa, ou se quebra com água, a camada interna da bicamada fosfolipídica, gerando dois segundos mensageiros, DAG e IP3. O DAG se mantém na membrana de plasma para angariar proteína Cinase C, enquanto o IP3 se difunde através do citoplasma e se une aos receptores IP3 no retículo endoplasmático fazendo íons de cálcio se soltarem para o citoplasma. Esses íons de cálcio se unem a e ativam a proteína Cinase C, que fosforola outras proteínas intracelulares, causando uma resposta celular.
View the full transcript and gain access to JoVE Core videos
Q1: What are second messengers and why are they important in cell signaling?
Second messengers are small molecules that relay signals from cell surface receptors to target molecules inside the cell. They amplify the initial signal, allowing a single external signal to produce a large internal response. Common examples include cyclic AMP, calcium ions, and inositol trisphosphate, which enable rapid cellular communication and response.
Q2: How do second messengers amplify cellular signals?
Second messengers amplify signals through cascade mechanisms where one activated receptor triggers production of many messenger molecules. Each messenger molecule can activate multiple downstream targets, creating exponential signal amplification. This response amplification allows cells to generate strong responses from weak external stimuli, enabling sensitive and rapid cellular communication.
Q3: What is the role of cyclic AMP as a second messenger?
Cyclic AMP is a second messenger produced when G-protein coupled receptors are activated. It diffuses through the cytoplasm and activates protein kinase A, which phosphorylates target proteins to produce cellular responses. Cyclic AMP enables intracellular signaling pathways that regulate metabolism, gene expression, and other critical cellular functions.
Q4: How do calcium ions function as second messengers in cells?
Calcium ions are released from intracellular stores or enter through plasma membrane channels when signaling pathways are activated. They bind to proteins like calmodulin, triggering conformational changes that activate downstream effectors. Calcium ions regulate diverse cellular processes including muscle contraction, enzyme activity, and gene transcription through signal transduction.
Q5: What is the phosphatidylinositol signaling pathway and its second messengers?
The phosphatidylinositol pathway generates two key second messengers: inositol trisphosphate and diacylglycerol. Inositol trisphosphate triggers calcium release from intracellular stores, while diacylglycerol activates protein kinase C. Together, these messengers coordinate cellular biochemical pathways and enable complex intracellular signaling responses to external stimuli.
Q6: How do second messengers differ from first messengers in cellular communication?
First messengers are extracellular signaling molecules like hormones that bind to cell surface receptors, while second messengers are intracellular molecules produced in response. First messengers cannot cross the plasma membrane, so second messengers relay their signal inside the cell. This two-step system allows cells to translate external signals into specific internal responses.
Q7: How is second messenger signaling terminated and regulated?
Second messenger signaling is terminated through enzymatic degradation and removal mechanisms. Phosphodiesterases break down cyclic AMP, calcium is pumped back into storage compartments, and inositol trisphosphate is dephosphorylated. These regulatory mechanisms ensure signal specificity and allow cells to respond dynamically to changing environmental conditions.