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2.
Arch Biochem Biophys ; 757: 110045, 2024 May 25.
Artículo en Inglés | MEDLINE | ID: mdl-38801966

RESUMEN

Phosphatidylinositol 4,5-bisphosphate (PIP2), as well as other anionic phospholipids, play a pivotal role in various cellular processes, including ion channel regulation, receptor trafficking, and intracellular signaling pathways. The binding of volatile anesthetics and propofol to PIP2 leads to alterations in PIP2-mediated signaling causing modulation of ion channels such as ɣ-aminobutyric acid type A (GABAA) receptors, voltage-gated calcium channels, and potassium channels through various mechanisms. Additionally, the interaction between anionic phospholipids and G protein-coupled receptors plays a critical role in various anesthetic pathways, with these anesthetic-induced changes impacting PIP2 levels which cause cascading effects on receptor trafficking, including GABAA receptor internalization. This comprehensive review of various mechanisms of interaction provides insights into the intricate interplay between PIP2 signaling and anesthetic-induced changes, shedding light on the molecular mechanisms underlying anesthesia.

4.
Anesth Analg ; 2023 Nov 14.
Artículo en Inglés | MEDLINE | ID: mdl-37968836

RESUMEN

Despite successfully utilizing anesthetics for over 150 years, the mechanism of action remains relatively unknown. Recent studies have shown promising results, but due to the complex interactions between anesthetics and their targets, there remains a clear need for further mechanistic research. We know that lipophilicity is directly connected to anesthetic potency since lipid solubility relates to anesthetic partition into the membrane. However, clinically relevant concentrations of anesthetics do not significantly affect lipid bilayers but continue to influence various molecular targets. Lipid rafts are derived from liquid-ordered phases of the plasma membrane that contain increased concentrations of cholesterol and sphingomyelin and act as staging platforms for membrane proteins, including ion channels. Although anesthetics do not perturb membranes at clinically relevant concentrations, they have recently been shown to target lipid rafts. In this review, we summarize current research on how different types of anesthetics-local, inhalational, and intravenous-bind and affect both lipid rafts and voltage-gated sodium channels, one of their major targets, and how those effects synergize to cause anesthesia and analgesia. Local anesthetics block voltage-gated sodium channel pores while also disrupting lipid packing in ordered membranes. Inhalational anesthetics bind to the channel pore and the voltage-sensing domain while causing an increase in the number, size, and diameter of lipid rafts. Intravenous anesthetics bind to the channel primarily at the voltage-sensing domain and the selectivity filter, while causing lipid raft perturbation. These changes in lipid nanodomain structure possibly give proteins access to substrates that have translocated as a result of these structural alterations, resulting in lipid-driven anesthesia. Overall, anesthetics can impact channel activity either through direct interaction with the channel, indirectly through the lipid raft, or both. Together, these result in decreased sodium ion flux into the cell, disrupting action potentials and producing anesthetic effects. However, more research is needed to elucidate the indirect mechanisms associated with channel disruption through the lipid raft, as not much is known about anionic lipid products and their influence over voltage-gated sodium channels. Anesthetics' effect on S-palmitoylation, a promising mechanism for direct and indirect influence over voltage-gated sodium channels, is another auspicious avenue of research. Understanding the mechanisms of different types of anesthetics will allow anesthesiologists greater flexibility and more specificity when treating patients.

5.
Kans J Med ; 16: 234-236, 2023.
Artículo en Inglés | MEDLINE | ID: mdl-37791030

RESUMEN

Introduction: Encounters for preoperative assessments are common within primary care offices, so it is imperative that family medicine residents learn how to perform preoperative evaluations. We assessed family medicine residents' knowledge of preoperative evaluation in preparation for surgery by providing a pre- and post-test alongside a didactic seminar. Methods: A didactic seminar on preoperative evaluations was presented at a family medicine resident didactics session by two senior anesthesiology residents. A 16-question, multiple choice test was used as both a pre-test and post-test to assess family medicine residents' knowledge. Results: A total of 31 participants took the pre-test (residents = 24; medical students = 7), and 30 participants took the post-test (residents = 23; medical students = 7). Mean scores and standard deviations were calculated for both tests with an average score of 37.50% ± 10.58% and 45.42% ± 11.12% on the pre- and post-test, respectively. Using the Kruskal-Wallis test, residents showed a significant improvement in test scores following the didactic presentation (p = 0.041), while overall results (residents and medical students) also reported a significant difference (p = 0.004). Conclusions: Our results demonstrated that educating family medicine residents and medical students on preoperative evaluation showed significant, quantifiable gains in knowledge following a brief didactic presentation. Given the current gap between guidelines and practice, our results emphasize the need for a formal medical school and residency-based curriculum related to preoperative patient evaluation.

7.
Int J Mol Sci ; 21(17)2020 Sep 02.
Artículo en Inglés | MEDLINE | ID: mdl-32887481

RESUMEN

Cytoplasmic calcium ([Ca2+]cyt) is a well-characterized second messenger in eukaryotic cells. An elevation in [Ca2+]cyt levels is one of the earliest responses in plant cells after exposure to a range of environmental stimuli. Advances in understanding the role of [Ca2+]cyt in plant development has been facilitated by the use of genetically-encoded reporters such as GCaMP. Most of these studies have relied on promoters such as Cauliflower Mosaic Virus (35S) and Ubiquitin10 (UBQ10) to drive expression of GCaMP in all cell/tissue types. Plant organs such as roots consist of various cell types that likely exhibit unique [Ca2+]cyt responses to exogenous and endogenous signals. However, few studies have addressed this question. Here, we introduce a set of Arabidopsis thaliana lines expressing GCaMP3 in five root cell types including the columella, endodermis, cortex, epidermis, and trichoblasts. We found similarities and differences in the [Ca2+]cyt signature among these root cell types when exposed to adenosine tri-phosphate (ATP), glutamate, aluminum, and salt, which are known to trigger [Ca2+]cyt increases in root cells. These cell type-targeted GCaMP3 lines provide a new resource that should enable more in depth studies that address how a particular environmental stimulus is linked to specific root developmental pathways via [Ca2+]cyt.


Asunto(s)
Proteínas de Arabidopsis/metabolismo , Arabidopsis/metabolismo , Señalización del Calcio , Calcio/metabolismo , Proteínas Luminiscentes/metabolismo , Raíces de Plantas/metabolismo , Plantones/metabolismo , Arabidopsis/crecimiento & desarrollo , Imagen Molecular , Raíces de Plantas/clasificación , Raíces de Plantas/crecimiento & desarrollo
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