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"Scherer, Philipp E"
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The many secret lives of adipocytes: implications for diabetes
2019
Adipose tissue remains a cryptic organ. The ubiquitous presence of adipocytes, the different fat pads in distinct anatomical locations, the many different types of fat, in each case with their distinct precursor populations, and the ability to interchange into other types of fat cells or even de-differentiate altogether, offers a staggering amount of complexity to the adipose tissue organ as a whole. Adipose tissue holds the key to improving our understanding of systemic metabolic homeostasis. As such, understanding adipose tissue physiology offers the basis for a mechanistic understanding of the pathophysiology of diabetes. This review presents some of the lesser known aspects of this fascinating tissue, which consistently still offers much opportunity for the discovery of novel targets for pharmacological intervention.
Journal Article
Obesity, Diabetes, and Increased Cancer Progression
by
Kim, Dae-Seok
,
Scherer, Philipp E.
in
Adipocytes - metabolism
,
adipokines
,
Adipokines - metabolism
2021
Rates of obesity and diabetes have increased significantly over the past decades and the prevalence is expected to continue to rise further in the coming years. Many observations suggest that obesity and diabetes are associated with an increased risk of developing several types of cancers, including liver, pancreatic, endometrial, colorectal, and post-menopausal breast cancer. The path towards developing obesity and diabetes is affected by multiple factors, including adipokines, inflammatory cytokines, growth hormones, insulin resistance, and hyperlipidemia. The metabolic abnormalities associated with changes in the levels of these factors in obesity and diabetes have the potential to significantly contribute to the development and progression of cancer through the regulation of distinct signaling pathways. Here, we highlight the cellular and molecular pathways that constitute the links between obesity, diabetes, cancer risk and mortality. This includes a description of the existing evidence supporting the obesity-driven morphological and functional alternations of cancer cells and adipocytes through complex interactions within the tumor microenvironment.
Journal Article
The ominous triad of adipose tissue dysfunction: inflammation, fibrosis, and impaired angiogenesis
by
Crewe, Clair
,
An, Yu Aaron
,
Scherer, Philipp E.
in
Adipocytes
,
Adipose Tissue - blood supply
,
Adipose Tissue - immunology
2017
There are three dominant contributors to the pathogenesis of dysfunctional adipose tissue (AT) in obesity: unresolved inflammation, inappropriate extracellular matrix (ECM) remodeling and insufficient angiogenic potential. The interactions of these processes during AT expansion reflect both a linear progression as well as feed-forward mechanisms. For example, both inflammation and inadequate angiogenic remodeling can drive fibrosis, which can in turn promote migration of immune cells into adipose depots and impede further angiogenesis. Therefore, the relationship between the members of this triad is complex but important for our understanding of the pathogenesis of obesity. Here we untangle some of these intricacies to highlight the contributions of inflammation, angiogenesis, and the ECM to both \"healthy\" and \"unhealthy\" AT expansion.
Journal Article
Targeting adipose tissue in the treatment of obesity-associated diabetes
by
Kusminski, Christine M.
,
Bickel, Perry E.
,
Scherer, Philipp E.
in
631/154
,
631/443/319/1642
,
692/420/256
2016
Key Points
Adipose tissue regulates many physiological processes, and is essential for handling excess calories.
Dysfunction of adipose tissue in obese humans is associated with disrupted metabolic homeostasis and increased risk for metabolic, cardiovascular and chronic inflammatory diseases, such as type 2 diabetes, dyslipidaemia, nonalcoholic fatty liver disease (NAFLD), hypertension, coronary heart disease and stroke.
Hence, pharmacological interventions focused on maintaining or improving adipose tissue health form the basis for both prophylactic and therapeutic interventions in metabolic and cardiovascular disease.
As an active endocrine organ, some adipocyte-derived secretory proteins and their receptors represent promising pharmacological targets.
Although chronic inflammatory processes are key contributors to adipose tissue dysfunction, targeting inflammatory components to achieve metabolic improvements has not proven to be effective to date.
Some of the established antidiabetic agents, such as peroxisome proliferator-activated receptor-γ (PPARγ) agonists and glucagon-like peptide 1 receptor (GLP1R) agonists, exert their effects at least partially on adipocytes.
Emerging adipose tissue-centric approaches to improve metabolism include reducing fibrosis, reducing hypoxia, enhancing beiging of adipose tissue and identifying key insulin-sensitizing downstream targets of PPARγ, as well as modulating insulin-sensitizing lipids (for example, fatty acid esters of hydroxyl fatty acids (FAHFAs)) or insulin-desensitizing lipids (ceramides).
Adipose tissue may become severely dysfunctional during obesity, resulting in disrupted metabolic homeostasis and ultimately type 2 diabetes. Here, Scherer and colleagues provide an overview of adipose tissue development, function and homeostasis, focusing on emerging potential strategies for targeting this organ in the treatment of obesity-associated diabetes.
Adipose tissue regulates numerous physiological processes, and its dysfunction in obese humans is associated with disrupted metabolic homeostasis, insulin resistance and type 2 diabetes mellitus (T2DM). Although several US-approved treatments for obesity and T2DM exist, these are limited by adverse effects and a lack of effective long-term glucose control. In this Review, we provide an overview of the role of adipose tissue in metabolic homeostasis and assess emerging novel therapeutic strategies targeting adipose tissue, including adipokine-based strategies, promotion of white adipose tissue beiging as well as reduction of inflammation and fibrosis.
Journal Article
Immunologic and endocrine functions of adipose tissue: implications for kidney disease
2018
Excess adiposity can induce adverse sequelae in multiple cell types and organ systems. The transition from the lean to the obese state is characterized by fundamental cellular changes at the level of the adipocyte. These changes affect the local microenvironment within the respective adipose tissue but can also affect nonadipose systems. Adipocytes within fat pads respond to chronic nutrient excess through hyperplasia or hypertrophy, which can differentially affect interorgan crosstalk between various adipose depots and other organs. This crosstalk is dependent on the unique ability of the adipocyte to coordinate metabolic adjustments throughout the body and to integrate responses to maintain metabolic homeostasis. These actions occur through the release of free fatty acids and metabolites during times of energy need -- a process that is altered in the obese state. In addition, adipocytes release a wide array of signalling molecules, such as sphingolipids, as well as inflammatory and hormonal factors (adipokines) that are critical for interorgan crosstalk. The interactions of adipose tissue with the kidney -- referred to as the adipo-renal axis -- are important for normal kidney function as well as the response of the kidney to injury. Here, we discuss the mechanistic basis of this interorgan crosstalk, which clearly has great therapeutic potential given the increasing rates of chronic kidney disease secondary to obesity and type 2 diabetes mellitus.
Journal Article
Tracking adipogenesis during white adipose tissue development, expansion and regeneration
by
Tao, Caroline
,
Wang, Qiong A
,
Gupta, Rana K
in
631/1647/767/722
,
631/443/319/1642/393
,
631/80/304
2013
Qiong Wang and colleagues introduce the AdipoChaser mouse, an
in vivo
tool to track the formation and turnover of adipocytes. They use this inducible mature adipocyte lineage-tracing system to monitor adipogenesis and follow the formation of white and beige adipocytes under different conditions: high-fat diet, cold exposure and β-adrenergic stimulation. The system produced some interesting findings on
in vivo
adipogenesis, including that beige adipocytes differentiate
de novo
from specialized precursors rather than by transdifferentiation of mature white adipocytes.
White adipose tissue displays high plasticity. We developed a system for the inducible, permanent labeling of mature adipocytes that we called the AdipoChaser mouse. We monitored adipogenesis during development, high-fat diet (HFD) feeding and cold exposure. During cold-induced 'browning' of subcutaneous fat, most 'beige' adipocytes stem from
de novo
–differentiated adipocytes. During HFD feeding, epididymal fat initiates adipogenesis after 4 weeks, whereas subcutaneous fat undergoes hypertrophy for a period of up to 12 weeks. Gonadal fat develops postnatally, whereas subcutaneous fat develops between embryonic days 14 and 18. Our results highlight the extensive differences in adipogenic potential in various fat depots.
Journal Article
Post-acute sequelae of COVID-19: A metabolic perspective
by
Scherer, Philipp E
,
Rosen, Clifford J
,
Kirwan, John P
in
Body mass index
,
Complications
,
COVID-19
2022
The SARS-CoV-2 pandemic continues to rage around the world. At the same time, despite strong public health measures and high vaccination rates in some countries, a post-COVID-19 syndrome has emerged which lacks a clear definition, prevalence, or etiology. However, fatigue, dyspnea, brain fog, and lack of smell and/or taste are often characteristic of patients with this syndrome. These are evident more than a month after infection, and are labeled as Post-Acute Sequelae of CoV-2 (PASC) or commonly referred to as long-COVID. Metabolic dysfunction (i.e., obesity, insulin resistance, and diabetes mellitus) is a predisposing risk factor for severe acute COVID-19, and there is emerging evidence that this factor plus a chronic inflammatory state may predispose to PASC. In this article, we explore the potential pathogenic metabolic mechanisms that could underly both severe acute COVID-19 and PASC, and then consider how these might be targeted for future therapeutic approaches.
Journal Article
Obesity and diabetes as comorbidities for COVID-19: Underlying mechanisms and the role of viral–bacterial interactions
2020
Obesity and diabetes are established comorbidities for COVID-19. Adipose tissue demonstrates high expression of ACE2 which SARS- CoV-2 exploits to enter host cells. This makes adipose tissue a reservoir for SARS-CoV-2 viruses and thus increases the integral viral load. Acute viral infection results in ACE2 downregulation. This relative deficiency can lead to disturbances in other systems controlled by ACE2, including the renin-angiotensin system. This will be further increased in the case of pre-conditions with already compromised functioning of these systems, such as in patients with obesity and diabetes. Here, we propose that interactions of virally-induced ACE2 deficiency with obesity and/or diabetes leads to a synergistic further impairment of endothelial and gut barrier function. The appearance of bacteria and/or their products in the lungs of obese and diabetic patients promotes interactions between viral and bacterial pathogens, resulting in a more severe lung injury in COVID-19.
Journal Article
Preexisting and inducible endotoxemia as crucial contributors to the severity of COVID-19 outcomes
2021
[...]the age-adjusted levels of LPS significantly vary in different ethnic groups, being the highest in South Asians.
[...]a “leaky gut” condition can be induced by SARS-CoV-2 infection in seemingly non-compromised individuals as well.
[...]we have to differentiate between the “preexisting” and “induced” endotoxemia in COVID-19 patients.
Amino acids are strongly involved in the regulation of the intestinal epithelial barrier function [19]; hence, a reduction of ACE2 content induced by interactions of these receptors with SARS-CoV-2 will significantly impair the integrity of the intestinal barrier.
[...]it was reported that ACE2 exhibits a protective effect against LPS-induced acute lung injury in mice [21]; hence, viral suppression of ACE2 can lead to a stronger inflammatory responses in lungs.
Journal Article
Low- and high-thermogenic brown adipocyte subpopulations coexist in murine adipose tissue
by
Armstrong, Brian
,
Huss, Janice M.
,
Tan, Jiayi
in
Adipocytes
,
Adipose tissue
,
Adipose tissue (brown)
2020
Brown adipose tissue (BAT), as the main site of adaptive thermogenesis, exerts beneficial metabolic effects on obesity and insulin resistance. BAT has been previously assumed to contain a homogeneous population of brown adipocytes. Utilizing multiple mouse models capable of genetically labeling different cellular populations, as well as single-cell RNA sequencing and 3D tissue profiling, we discovered a brown adipocyte subpopulation with low thermogenic activity coexisting with the classical high-thermogenic brown adipocytes within the BAT. Compared with the high-thermogenic brown adipocytes, these low-thermogenic brown adipocytes had substantially lower Ucp1 and Adipoq expression, larger lipid droplets, and lower mitochondrial content. Functional analyses showed that, unlike the high-thermogenic brown adipocytes, the low-thermogenic brown adipocytes have markedly lower basal mitochondrial respiration, and they are specialized in fatty acid uptake. Upon changes in environmental temperature, the 2 brown adipocyte subpopulations underwent dynamic interconversions. Cold exposure converted low-thermogenic brown adipocytes into high-thermogenic cells. A thermoneutral environment had the opposite effect. The recruitment of high-thermogenic brown adipocytes by cold stimulation is not affected by high-fat diet feeding, but it does substantially decline with age. Our results revealed a high degree of functional heterogeneity of brown adipocytes.
Journal Article