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Cancer anorexia-cachexia syndrome: psychological effect on the patient and family.

The majority of patients with advanced cancer experience weight loss, reduced appetite, fatigue, and weakness. Chronic nausea and early satiety may also occur. This constellation of symptoms is known as the cancer anorexia-cachexia syndrome. Together with cancer pain, cancer anorexia-cachexia syndrome has been identified as 1 of the 2 most frequent and devastating problems affecting individuals with advanced malignancies. Research examining the issue of cancer anorexia-cachexia syndrome has been conducted; however, such work is largely biomedical in orientation. In contrast, the psychologic dimensions of the cancer anorexia-cachexia syndrome experience from the perspective of terminally ill patients and their family members is less well explored or described. The ability to provide psychosocial support to patients and families requires that caregivers appreciate the psychologic effect of cancer anorexia and cachexia on these individuals. This article examines that effect in light of existing knowledge and discusses the clinical implications arising from this work.

Anorexia↗

On our way to targeted therapy for cachexia in cancer?

PURPOSE OF REVIEW: Cachexia, the occurrence of involuntary weight loss due to loss of adipose tissue and skeletal muscle mass, is among the most common and devastating symptoms in patients with advanced cancer. It is a significant factor contributing to the poor performance status and high mortality rate of these patients, and is a distressing problem for both patients and their families. Despite extensive research in an attempt to better understand the mechanisms involved, progress in the management of cancer cachexia has been slow. RECENT FINDINGS: The pathogenic mechanisms of cachexia and anorexia are multifactorial, but cytokines and tumour-derived factors are known to play a significant role, thereby representing suitable therapeutic targets. Moreover, recent advances in the field of molecular biology have shed light on other mediators involved in the mechanisms leading to muscle wasting, thus increasing potential targets for new therapies. SUMMARY: This review will focus on recent findings in relation to the molecular pathways leading to muscle wasting that have improved our current understanding of cachexia and will direct the future management of cachexia in cancer towards targeted therapies.

Antineoplastic Agents↗

Prognosis and therapy approaches of cardiac cachexia.

PURPOSE OF REVIEW: This review focuses on the prognostic implications and therapeutic approaches in cardiac cachexia - a syndrome that has been recognized for a long time, although it has only received increased attention lately. RECENT FINDINGS: Cardiac cachexia is a common and serious complication of chronic heart failure and associated with very poor prognosis, yet is often recognized by the clinicians only at late stage. Approximately 15% of heart failure patients will develop cardiac cachexia, defined by a 6% non-edematous, non-voluntary weight loss over a period of 6 months. Several studies have demonstrated that cardiac cachexia is a multi-factorial disease, which involves increased neurohormonal activity and immune abnormalities, resulting in hormonal and metabolic catabolic/anabolic imbalance of the body, leading to the loss of fat and lean mass and ultimately death. So far, there are no standardized therapies available for this disease. SUMMARY: Cardiac cachexia in heart failure patients is under-recognized and there is currently no causal therapy available. Several interesting treatment options exist, however, which have emerged recently, including appetite stimulants, hormones and 'classical' drugs, such as beta-blockers and ACE inhibitors.

Cachexia↗

Cachexia and obesity: two sides of one coin?

PURPOSE OF REVIEW: Leptin, a member of the interleukin-6 superfamily of proteins, modifies the gene expression and synthetic pathway of both orexigenic (appetite-stimulating) and anorexigenic (appetite-suppressing) molecules in the hypothalamus, thereby controlling adipocyte energy stores. Lack of leptin secretion or the inability of leptin to interact with these molecules via leptin receptors, prevent leptin's effects and lead to obesity. It is not well known, however, how these feeding-regulatory molecules are affected in cachexia associated with cancer and other critical conditions in which cytokines such as interleukin-1 and interleukin-6 may have a key role. RECENT FINDINGS: Decreased leptin and increased leptin-like signaling by cytokines in the hypothalamus are the hallmark of obesity and cachexia, respectively. Increased orexigenic and impaired anorexigenic signaling produces hyperphagia and obesity, while the reverse applies to anorexia-cachexia in which adaptive feeding response to starvation is lacking or insufficient. SUMMARY: Imbalanced operation of orexigenic and anorexigenic circuits perturbs the homeostatic loop of body weight regulation leading to either obesity or cachexia. Modifiers of the central effects on appetite and energy metabolism could restore the balance and be effective for treating both conditions. In cachexia this may especially be true when combined with agents that target muscle and protein breakdown.

Anorexia↗

Forebrain patterns of c-Fos and FosB induction during cancer-associated anorexia-cachexia in rat.

Forebrain structures are necessary for the initiation of food intake and its coupling to energy expenditure. The cancer-related anorexia-cachexia syndrome is typified by a prolonged increase in metabolic rate resulting in body weight loss which, paradoxically, is accompanied by reduced food intake. The aim of the present work was to study the forebrain expression of Fos proteins as activation markers and thus to identify potential neurobiological mechanisms favouring catabolic processes or modulating food intake in rats suffering from cancer-related anorexia-cachexia. Neurons in forebrain structures showing most pronounced induction of Fos proteins were further identified neurochemically. To provoke anorexia-cachexia, cultured Morris hepatoma 7777 cells were injected subcutaneously in Buffalo rats. This resulted in a slowly growing tumour inducing approximately 7% body weight loss and a 20% reduction in food intake when the tumour represented 1-2% of body mass. Anorexia-cachexia in these animals was found to be accompanied by Fos induction in several hypothalamic nuclei including the paraventricular and ventromedial hypothalamus, in the parastrial nucleus, the amygdala, the bed nucleus of the stria terminalis, ventral striatal structures and the piriform and somatosensory cortices. Neurochemical identification revealed that the vast majority of FosB-positive neurons in the nucleus accumbens, ventral caudate-putamen and other ventral striatal structures contained prodynorphin or proenkephalin mRNA. These findings indicate that forebrain structures that are part of neuronal networks modulating catabolic pathways and food ingestion are activated during tumour-associated anorexia-cachexia and may contribute to the lack of compensatory eating in response to weight loss characterizing this syndrome.

Animals↗

Characterization of a human homologue of proteolysis-inducing factor and its role in cancer cachexia.

Cachexia is an important cause of secondary morbidity and mortality in patients with cancer. Previous studies have suggested that cancer-associated cachexia may be due in part to tumor-specific production and secretion of a glycosylated peptide, proteolysis-inducing factor, originally identified in a murine cancer cachexia model. We report here the cloning of a human cDNA that generates a peptide having high-sequence homology to this proteolysis-inducing factor. Constitutive expression of human proteolysis-inducing factor is low or absent in most normal human tissues but appears to be elevated in some human tumors. Stable forced expression of human proteolysis-inducing factor in multiple murine and human cell lines results in a secreted protein, but no glycosylation of the protein is detected. In addition, tumor xenografts engineered to overexpress human proteolysis-inducing factor protein do not induce cachexia in vivo. These findings raise important questions as to potential cross-species differences in protein sequence and processing of murine proteolysis-inducing factor and human proteolysis-inducing factor, as well as the nature of the relationship between human proteolysis-inducing factor and the development of cancer cachexia.

Amino Acid Sequence↗

Role of mononuclear cells and inflammatory cytokines in pancreatic cancer-related cachexia.

BACKGROUND AND PURPOSE: The mechanism behind aggressive development of cachexia in patients suffering from pancreatic cancer is not well understood. In this study, we investigated which factors are associated with the cachectic status of the patients and evaluated cachexia-promoting capacity of cancer and inflammatory cells. EXPERIMENTAL DESIGN: DNA microarray analysis and quantitative reverse transcription-PCR were used to screen for cachexia-associated factors in pancreatic specimens obtained from noncachectic and cachetic patients diagnosed with pancreatic ductal adenocarcinoma. The expression pattern of the most prominently altered cachexia-associated factor, interleukin-6 (IL-6), was further analyzed in patients sera by ELISA, in pancreatic specimens by immunohistochemistry, and in a coculture system by quantitative reverse transcription-PCR using pancreatic cancer cell lines T3M4 (IL-6 positive) and Panc-1 (IL-6 negative) and peripheral blood mononuclear cells (PBMC) obtained from donors and noncachectic and cachectic patients. RESULTS: Among numerous analyzed factors, IL-6 was significantly overexpressed in pancreatic specimens and elevated in serum of cachectic patients. The coculture system revealed that pancreatic cancer T3M4 cells but not Panc-1 cells were able to stimulate IL-6 exclusively in cachectic PBMC (by 14-fold) and this triggering was reduced by half in the presence of IL-6-neutralizing antibodies. CONCLUSION: IL-6 represents a prominent cachexia-associated factor in pancreatic cancer. IL-6 overexpression in cachectic patients is related to the ability of certain tumors to sensitize PBMC and induce cytokine expression in cachectic PBMC.

Adult↗

Evidence that tumor necrosis factor plays a pathogenetic role in the paraneoplastic syndromes of cachexia, hypercalcemia, and leukocytosis in a human tumor in nude mice.

Recently, we have established a human squamous cell carcinoma of the maxilla (called MH-85) associated with hypercalcemia, leukocytosis, and cachexia in culture. MH-85 tumor cells caused the same paraneoplastic syndromes in tumor-bearing nude mice. We found that there was a sixfold increase in splenic size in MH-85 tumor-bearing mice. This increase paralleled tumor growth and was reversed by surgical removal of the tumor. Splenectomy in nude mice 1 wk before or 6 wk after tumor inoculation resulted in a decrease in tumor growth, and impairment of hypercalcemia, leukocytosis, and cachexia. In MH-85 tumor-bearing animals that had been pretreated by splenectomy, intravenous injection of fresh normal spleen cells caused an immediate reversal of leukocytosis, hypercalcemia, and cachexia. Since the presence of cachexia in both the patient and the mice carrying the tumor suggested tumor necrosis factor (TNF) may be overproduced, we injected polyclonal neutralizing antibodies raised against murine TNF into tumor-bearing mice. There was a rapid and reproducible decrease in blood ionized calcium, accompanied by suppression of osteoclast activity. No changes in blood ionized calcium were seen in mice injected with normal immune sera. In addition, there was an increase in body weight and decrease in white cell count. Plasma immunoreactive TNF was increased almost fourfold in tumor-bearing nude mice compared with control nude mice. Although TNF activity was undetectable in MH-85 culture supernatants, cells of the macrophage lineage, including spleen cells, released increased amounts of TNF when cultured with MH-85 tumor-conditioned media. These results suggest that splenic cytokines such as TNF may influence the development of the paraneoplastic syndromes of hypercalcemia, leukocytosis, and cachexia in these animals, as well as tumor growth. They also show that paraneoplastic syndromes may be due to factors produced by normal host cells stimulated by the presence of the tumor.

Animals↗

Evidence for the involvement of interleukin 6 in experimental cancer cachexia.

In this report we describe an experimental model of cachexia that fulfills the criteria of an early effect with a small tumor mass not related to the growth rate of the tumor, and progressive wasting of muscle and fat without a detectable loss of appetite. C-26.IVX is a cell line derived from murine colon-26 adenocarcinoma which retains the transplantability of the original tumor and induces true cachexia in syngeneic hosts. Evidence is presented to support a role for interleukin (IL-6) as a cachectic factor in the development of cancer cachexia in this model system. Thus, increasing levels of IL-6 in C-26.IVX-bearing mice correlate with the development of cachexia. If the primary tumors were resected, mice gained weight and the levels of IL-6 in the serum were reduced significantly. Moreover, monoclonal antibody to murine IL-6 (but not anti-tumor necrosis factor antibody) was able to significantly suppress the development of key parameters of cachexia in tumor bearing mice.

Animals↗

Role of leptin and melanocortin signaling in uremia-associated cachexia.

The pathogenesis of cachexia in patients with uremia is unknown. We tested the hypothesis that uremia-associated cachexia is caused by leptin signaling through the hypothalamic melanocortin receptor 4 (MC4-R). We performed either subtotal nephrectomy (N) or sham operations in WT, leptin receptor-deficient (db/db), and MC4-R knockout (MC4-RKO) mice. The animals were on 17% protein diets, and none of the uremic animals were acidotic. WT-N mice produced a classic syndrome of cachexia characterized by decreased food intake, increased metabolic rate, and loss of lean body mass. Corrected leptin levels were elevated. db/db mice and MC4-RKO mice resisted the cachexic effects of uremia on weight gain, body composition, and metabolic rate. Likewise, treatment of WT mice with intracranial agouti-related peptide reversed the cachexic effects of uremia on appetite, weight gain, body composition, and metabolic rate. Gene expression of ubiquitin C and proteasome subunits C2, C3, and C9 was not changed in the uremic animals, suggesting that other pathways are involved in this model of nonacidotic uremic cachexia. The results of this study suggest that elevated circulating levels of cytokines such as leptin may be an important cause of uremia-associated cachexia via signaling through the central melanocortin system.

Agouti-Related Protein↗

Cancer cachexia.

Cancer cachexia describes a syndrome of progressive weight loss, anorexia, and persistent erosion of host body cell mass in response to a malignant growth. Although often associated with preterminal patients bearing disseminated disease, cachexia may be present in the early stages of tumor growth before any signs or symptoms of malignancy. A decline in food intake relative to energy expenditure (which may be increased, normal, or decreased) is the fundamental physiologic derangement leading to cancer-associated weight loss. In addition, abnormalities of host carbohydrate, protein, and fat metabolism lead to continued mobilization and ineffective repletion of host tissue, despite adequate nutritional support. Mediators of cancer anorexia and associated abnormalities are unknown. Cachectin/TNF or other host-derived cytokines (produced as a defense against malignancy) have been implicated as signal molecules in cachexia, based upon similar metabolic derangements produced by these cytokines in other chronic wasting illnesses. Nutritional support is effective in maintaining body weight of cachectic cancer patients, but ineffective in maintaining lean body mass. Although in one study parenteral nutritional support has improved operative morbidity and mortality in cancer patients, it has not yet improved response to chemotherapy or radiation therapy. Because of metabolic derangements seen in cancer cachexia, effective nutritional treatment regimens will probably require manipulation of host intermediary metabolism in addition to feeding. Insulin therapy or exercise are two such methods which appear to preserve host composition by preferential feeding of the host at the expense of the tumor. Future studies which more clearly define the role of signal molecules in producing cancer cachexia syndrome may lead to new treatment strategies, possibly involving modulation of the effects of such molecules on host metabolism.

Anorexia↗

A study of thyroid function in cancer cachexia.

The mechanisms responsible for cancer cachexia have not yet been clarified. To further investigate the role played by the hypothalamic-pituitary-thyroid axis in cancer cachexia, we evaluated serum levels of T3, FT3, T4, FT4, TSH and TBG in a group of 26 cancer patients, 14 of whom showed cachexia, whereas the other 12 had a body weight within the normal range despite their advanced diseases. As controls, 58 healthy subjects and 11 patients with benign weight loss were included in the study. Low levels of both T3 and FT3 were observed in all patients with benign weight loss and in 9/12 advanced cancer patients who had no cancer cachexia. On the contrary, only 4/14 cachectic cancer patients presented decreased values of T3 and FT3. Moreover, the mean serum levels of T3 and FT3 in cachectic oncologic patients were significantly higher than those seen both in non-cachectic cancer patients and in patients with benign weight loss. Since T3 is the biologically active thyroid hormone, the lack of a decrease in its production might play a role in the pathogenesis of cancer cachexia.

Adult↗

Glucocorticoid blockade does not abrogate tumor-induced cachexia.

Cancer-induced cachexia is a common manifestation observed in patients with malignancies. Elevated levels of circulating glucocorticoids and interleukin-6 (IL-6) have been observed in cancer patients with cachexia and are implicated as major mediators in this process. The purpose of this study was to investigate the role of circulating glucocorticoid levels as primary mediators in cancer-induced cachexia. We evaluated whether inhibition of glucocorticoids with the receptor antagonist RU-486 could abrogate the detrimental wasting of muscle and adipose tissues seen in a well-characterized murine tumor-induced cachexia model. Mice (12/group) were randomized to control, tumor-bearing, control + vehicle, or tumor-bearing + glucocorticoid receptor antagonist groups. Circulating serum glucocorticoid and IL-6 levels were measured in addition to multiple body composition parameters, such as total body weight, lean body mass, and adipose content. The results of this study indicate a significant physiological alteration in the tumor-bearing host that causes severe and detrimental changes in body composition parameters. Regression analysis demonstrated a significant correlation between increased circulating glucocorticoid levels and alterations in body composition parameters. These observed defects were not abrogated with the administration of a glucocorticoid receptor antagonist. We therefore conclude that the untoward effects of tumor-induced cachexia are not mediated primarily by the peripheral effects of high circulating glucocorticoid levels but may involve a complex interaction with IL-6.

Adenocarcinoma↗

The regulation of feeding and metabolic rate and the prevention of murine cancer cachexia with a small-molecule melanocortin-4 receptor antagonist.

Cachexia is metabolic disorder characterized by anorexia, an increased metabolic rate, and loss of lean body mass. It is a relatively common disorder, and is a pathological feature of diseases such as cancer, HIV infection, and renal failure. Recent studies have demonstrated that cachexia brought about by a variety of illnesses can be attenuated or reversed by blocking activation of the melanocortin 4 subtype receptor (MC4-R) within the central nervous system. Although the potential use of central MC4-R antagonists for the treatment of cachexia was supported by these studies, utility was limited by the need to deliver these agents intracerebroventricularly. In the current study, we present a series of experiments demonstrating that peripheral administration of a small molecule MC4-R antagonist can effectively stimulate daytime (satiated) food intake as well as decrease basal metabolic rate in normal animals. Furthermore, this compound attenuated cachexia and preserved lean body mass in a murine cancer model. These data clearly demonstrate the potential of small molecule MC4-R antagonists in the treatment of cachexia and underscore the importance of melanocortin signaling in the development of this metabolic disorder.

Animals↗

IL-6-like cytokines and cancer cachexia: consequences of chronic inflammation.

An estimated 30% of cancer deaths are attributed to cachexia and its consequences. Cachexia (wasting syndrome) is the hypercatabolism of the body's carbon sources, proteins and lipids, for conversion into energy. It is induced by a variety of pathological conditions, including cancer. Among the inflammatory responses to cancer is the synthesis of cytokines, including IL-6 and related cytokines. These cytokines have been found to induce cachexia by altering metabolism of lipids and proteins. IL-6-like cytokines have been found to inhibit lipid biosynthesis by adipocytes, which increased the rate of lipid catabolism. Others have described the atrophy and increased catabolism of muscle protein due to IL-6. A cytokine closely-related to IL-6 is leptin, which plays a major role in lipid metabolism under normal conditions. The role of leptin in pathological conditions such as cancer cachexia has not yet been fully elucidated. Detailed mechanistic information about the induction of cancer cachexia by IL-6-like cytokines requires more research.

Animals↗

The use of melanocortin antagonists in cachexia of chronic disease.

Cachexia is a wasting syndrome that frequently develops in the setting of chronic diseases including cancer, congestive heart failure, chronic obstructive pulmonary disease, AIDS, renal failure and liver failure. Loss of lean body mass is believed to be a significant factor contributing to morbidity and mortality in these chronic diseases; however, there are currently no treatments available that have proven to be effective in reversing the progressive loss of lean body mass in cachectic patients. Evidence from animal models suggests a compelling link between inflammation, the central melanocortin system and cachexia. This review summarises the current evidence supporting the role of the melanocortin 4 (MC4) receptor subtype in cachexia, and discusses the development and use of small-molecule MC4 antagonists, which have proved to be effective in preventing the loss of lean body mass in animal models of cachexia. MC4 antagonists represent an attractive therapeutic approach for cachexia that may attenuate the loss of lean body mass in cachectic patients.

Animals↗

The science of megestrol acetate delivery: potential to improve outcomes in cachexia.

Cachexia, usually defined as the loss of >5% of an individual's baseline bodyweight over 2-6 months, occurs with a number of diseases that includes not only AIDS and advanced cancer but also chronic heart failure, rheumatoid arthritis, chronic obstructive pulmonary disease, Crohn disease, and renal failure. Anorexia is considered a key component of the anorexia-cachexia syndrome. Progestogens, particularly megestrol acetate, are commonly used to treat anorexia-cachexia. The mechanism of action of megestrol is believed to involve stimulation of appetite by both direct and indirect pathways and antagonism of the metabolic effects of the principal catabolic cytokines. Because the bioavailability of megestrol acetate directly affects its efficacy and safety, the formulation was refined to enhance its pharmacokinetics. Such efforts yielded megestrol acetate in a tablet form, followed by a concentrated oral suspension form, and an oral suspension form developed using nanocrystal technology. Nanocrystal technology was designed specifically to optimize drug delivery and enhance the bioavailability of drugs that have poor solubility in water. Megestrol acetate nanocrystal oral suspension is currently under review by the US FDA for the treatment of cachexia in patients with AIDS. Preclinical pharmacokinetic data suggest that the new megestrol acetate formulation has the potential to significantly shorten the time to clinical response and thus may improve outcomes in patients with anorexia-cachexia.

Administration, Oral↗

Expression of cancer cachexia-related factors in human cancer xenografts: an immunohistochemical analysis.

We immunohistochemically evaluated the involvement of five cancer cachexia-related factors, including leukemia-inhibitory factor (LIF), zinc-alpha2-glycoprotein (ZAG), interleukin 6 (IL-6), proteolysis-inducing factor (PIF) and tumor necrosis factor alpha (TNF alpha) in causing cancer cachexia. Twenty-six xenografts implanted into mice were examined for the expression of the cancer cachexia-related factors, in relation to the body weight loss of the hosts. Five xenografts were categorized in the cachectic group, and the remaining 21 xenografts belonged to the non-cachectic group. LIF was extensively expressed in both the cachectic and non-cachectic groups. ZAG and IL-6 were expressed in one of the cachectic and some non-cachectic xenografts. PIF and TNF alpha were detected in one and two non-cachectic xenografts, respectively, but in none of the cachectic ones. Any of five factors examined were not conclusive for causing cancer cachexia in the murine xenograft model. Further analysis is needed in order to elucidate the mechanisms responsible for cancer cachexia.

Animals↗