BACKGROUND:Findings from Kronos Early Estrogen Prevention Study (KEEPS)-Cog trial suggested no cognitive benefit or harm after 48 months of menopausal hormone therapy (mHT) initiated within 3 years of final menstrual period. To clarify the long-term effects of mHT initiated in early postmenopause, the observational KEEPS Continuation Study reevaluated cognition, mood, and neuroimaging effects in participants enrolled in the KEEPS-Cog and its parent study the KEEPS approximately 10 years after trial completion. We hypothesized that women randomized to transdermal estradiol (tE2) during early postmenopause would show cognitive benefits, while oral conjugated equine estrogens (oCEE) would show no effect, compared to placebo over the 10 years following randomization in the KEEPS trial. METHODS AND FINDINGS:The KEEPS-Cog (2005-2008) was an ancillary study to the KEEPS (NCT00154180), in which participants were randomized into 3 groups: oCEE (Premarin, 0.45 mg/d), tE2 (Climara, 50 μg/d) both with micronized progesterone (Prometrium, 200 mg/d for 12 d/mo) or placebo pills and patch for 48 months. KEEPS Continuation (2017-2022), an observational, longitudinal cohort study of KEEPS clinical trial, involved recontacting KEEPS participants approximately 10 years after the completion of the 4-year clinical trial to attend in-person research visits. Seven of the original 9 sites participated in the KEEPS Continuation, resulting in 622 women of original 727 being invited to return for a visit, with 299 enrolling across the 7 sites. KEEPS Continuation participants repeated the original KEEPS-Cog test battery which was analyzed using 4 cognitive factor scores and a global cognitive score. Cognitive data from both KEEPS and KEEPS Continuation were available for 275 participants. Latent growth models (LGMs) assessed whether baseline cognition and cognitive changes during KEEPS predicted cognitive performance at follow-up, and whether mHT randomization modified these relationships, adjusting for covariates. Similar health characteristics were observed at KEEPS randomization for KEEPS Continuation participants and nonparticipants (i.e., women not returning for the KEEPS Continuation). The LGM revealed significant associations between intercepts and slopes for cognitive performance across almost all domains, indicating that cognitive factor scores changed over time. Tests assessing the effects of mHT allocation on cognitive slopes during the KEEPS and across all years of follow-up including the KEEPS Continuation visit were all statistically nonsignificant. The KEEPS Continuation study found no long-term cognitive effects of mHT, with baseline cognition and changes during KEEPS being the strongest predictors of later performance. Cross-sectional comparisons confirmed that participants assigned to mHT in KEEPS (oCEE and tE2 groups) performed similarly on cognitive measures to those randomized to placebo, approximately 10 years after completion of the randomized treatments. These findings suggest that mHT poses no long-term cognitive harm; conversely, it provides no cognitive benefit or protective effects against cognitive decline. CONCLUSIONS:In these KEEPS Continuation analyses, there were no long-term cognitive effects of short-term exposure to mHT started in early menopause versus placebo. These data provide reassurance about the long-term neurocognitive safety of mHT for symptom management in healthy, recently postmenopausal women, while also suggesting that mHT does not improve or preserve cognitive function in this population.
AbstractBackgroundWomen have higher rates of hypertension at the time of menopausal transition than men. Although elevated systolic and diastolic blood pressures (SBP and DBP) are risk factors for white matter (WM) injury both in women and men, WM hyperintensities (WMH), a marker of WM injury, are more common in women than in men after the age of 60. Thus, women may be vulnerable to the effects of elevated BP on WM integrity during menopausal transition. We investigated the association of BP in recently postmenopausal women with good cardiovascular health with WMH volume assessed 13 years later.MethodWomen (n = 212; median age = 67; range 58‐72), who were previously enrolled in a multi‐site randomized menopausal hormone therapy trial, Kronos Early Estrogen Prevention Study (KEEPS), participated in the present observational KEEPS Continuation Study. SBP and DBP were measured at KEEPS baseline (median age = 54 years; range 44‐59). Participants who were on antihypertensive medications at KEEPS baseline were excluded from the analysis (n = 34). Approximately 9 years after the end of KEEPS menopausal hormones versus placebo 4‐year interventions, WM integrity was assessed with automated WMH volume measurements from 3D‐FLAIR MRI. Associations of baseline SBP and DBP with logWMH volume measured 13 years later were tested by linear regression analyses. Model 1 was adjusted for age, study site, and total intracranial volume. Model 2 was adjusted for covariates of model 1, triglycerides, low density lipoproteins, and waist/hip ratio.ResultThe median SBP was 116 (range 83‐158) and DBP was 74 (range 56‐98). Higher SBP was associated with greater WMH volume (model 1:p = 0.005; model 2:p = 0.005). Similarly, higher DBP was associated with greater WMH volume (model 1:p = 0.008; model 2:p = 0.006) (Figure 1). Neither menopausal hormone therapies versus placebo, nor having high/low SBP (≥120/<120) modified these associations. Voxel‐based analyses demonstrate the association of BPs with the spatial distribution of WMHs (Figure 2).ConclusionHigher BPs in recently menopausal women were associated with greater WM injury more than a decade later after adjusting for CVD risk factors. Early postmenopausal stage is a critical time for BP control in women, which may reduce the risk of WM injury later in life.
Objective The relationships between cardiometabolic indices and cognition were examined in recently menopausal women. Methods Cross-sectional analysis of baseline data from the KEEPS (Kronos Early Estrogen Prevention Study)-Cognitive ancillary study (n = 621). Cognitive performance was assessed by the Modified Mini Mental Status (3MS) score (primary outcome). Physical cardiometabolic indices included body mass index (BMI), waist circumference (WC), waist-to-hip ratio (WHR), and blood pressure (BP). Biochemical cardiometabolic indices included serum levels of high sensitivity C-reactive protein (hs-CRP), total cholesterol (TC), low-density lipoprotein (LDL-C), high-density lipoprotein (HDL-C), non-HDL (non-HDL-C), triglycerides (TG), fasting serum glucose (FSG), and insulin resistance (HOMA-IR). Socio-demographic variables included age, race/ethnicity, education, and lifestyle (physical activity, smoking). Central adiposity was defined as WC > 88 cm (>35 in) and WHR > 0.8. Separate stepwise multivariable analyses (GLM, ordinal logistic regression and logistic regression) assessed relationships between 3MS scores (as continuous, in tertiles and dichotomized at 90 respectively) with the measures of central adiposity (predictor variables); socio-demographic variables (age, time since menopause, race, educational status and lifestyle) and cardiometabolic variables (BP, lipids, FSG, HOMA-IR and hs-CRP) were examined as covariates. The final multivariable models included time since menopause, race, ethnicity, educational status, strenuous exercise, BMI ≥30 kg/m2, non-HDL-C and hs-CRP as covariates. Due to the high collinearity between the two indices of central adiposity, within each analytic strategy, separate models examined the respective associations of WC > 88 cm and WHR > 0.8 with 3MS score. Results On adjusted analyses, indices of central adiposity were independent predictors of significantly lower 3MS scores (p < 0.05). Consistency in this relationship was observed across the three different multivariable regression analytic approaches (GLM, ordinal and logistic regression). Conclusions Among recently menopausal women, WC > 88 cm and WHR > 0.8 were associated with significantly lower cognitive function, as reflected by lower 3MS scores. The mechanisms that might explain the observed negative implications of central adiposity for cognitive function warrant further study.
Testicular function declines gradually and moderately with age from the 4th decade (Andropause). Syndromic diagnosis based on clinical manifestations and repeated low serum testosterone (T) in older men can be either by Organic (OH) or Functional hypogonadism (FH). The latter is present in absence of organic pathology, but associated with obesity, comorbidities, and medications. Decreased libido, erectile dysfunction, weak morning erection, and low serum T levels—usually > 200 ng/dL—seem to define this syndrome. The clinical picture of FH is potentially reversible. Lifestyle modifications, optimization of chronic diseases control, and specific end-organ dysfunction are the basis for FH therapy, without T application. T treatment is only recommended/approved for OH. However, Testosterone Trial and TEAAM study have reported results of T administration, in older men with low serum T, for no other reason than age. No trial has been of sufficient size or duration to determine if T-therapy increases the risk of prostate cancer or CV risk. Diagnosis of either OH or FH in advanced age is difficult because total serum T is hindered by age and illnesses, and because free or bioavailable T determinations are only reliable if carried out in specialized laboratories.
This chapter explores the intersection of somatic aging with the effects of hormone-mediated ovarian aging. Menopause, which begins the year after the final menstrual period, marks the loss of ovarian function in female patients. In many aspects of health, from the cardiometabolic system to bone mineral density, this loss of estrogen amplifies the aging process. This chapter provides an overview of the menopause transition and the effects of estrogen deprivation on cardiovascular, metabolic, bone, cognition, and mood. The most recent trials studying the effects of hormone replacement therapy are included. We also provide an overview of hormonal, nonhormonal, and nonpharmacologic therapies for the treatment of menopause-related symptoms.
Treatment of male hypogonadism with testosterone (T) aims to replicate the physiological actions of endogenous T. Benefits are well demonstrated in men of any age with organic hypogonadism, who should be treated, except for those with absolute contraindications (prostate and breast cancer). Recommendations for T treatment follow the Endocrine Society Clinical Guidelines. Serum total T is recommended to be within the low-normal range (300–400 ng/dL). The different T preparations are reviewed. Preferred T formulations are those that maintain stable serum concentrations and mild clinical effects. Replacement T treatment increases prostate volume and PSA. No increased incidence of prostate cancer has been demonstrated in hypogonadal men on T therapy but monitoring of the prostate is mandatory. Recommended monitoring includes at least total T levels, serum PSA, rectal examination of the prostate, surveillance for apnea-hypopnea-sleep syndrome, and erythrocytosis. Most studies and meta-analyses described in this review have shown no increase in cardiovascular events. However published data are controversial. An increase in risk in men of middle and advanced age cannot be excluded until much larger and longer duration studies are completed. Gynecomastia is Identifiable in 1/3 of men in middle or advanced age. We describe the major etiopathogenic factors and diagnostic evaluation based on clinical manifestations and hormonal determinations as well as therapeutic management. Benign prostatic hypertrophy and prostate cancer are related to biological aging. The chapter will explore the pathogenesis and therapeutic considerations of each process. Special mention is made of the rationale and current drugs used for the hormonal treatment of prostate cancer.
The most common endocrine changes of healthy aging are declines in GH and IGF-I, ovarian steroids in postmenopausal women, testosterone (T) in men, and DHEA. Aging is associated with an increased frequency of pituitary tumors, detected incidentally in 10%–25% of hypothalamic-pituitary MRIs performed in older persons. Most (60%–80%) are slow growing, nonfunctioning, micro-incidentalomas. Clinical manifestations are most often related to a macroadenoma mass effect (e.g., visual disturbances with chiasmatic compression). Nearly 20% of patients perceive symptoms of hormone deficiency or excess. At least one hormone deficit (mostly gonadotropins and/orGH) is shown by testing in most patients with nonfunctioning pituitary adenomas, and hormonal excess is demonstrated in 20%. Detailed neuroradiological and functional diagnosis of patients with pituitary tumors is reviewed. Transsphenoidal surgery is safe and effective in elderly patients with pituitary tumors, although there is some increased comorbidity and anesthetic risk. Adjuvant radiotherapies are only indicated in elderly patients with tumor reexpansion. Therapy with glucocorticoids, L-T4, T, GH and DDAVP should be individualized to account for physiological changes of aging and associated pathologies. Hormone replacement therapy with glucocorticoids, L-T4, T in men, GH and DDAVP are reviewed in detail.
Objective: Heart fat deposition has been linked to atherosclerosis, and both accelerate after menopause. Hormone therapy (HT) may differentially slow heart fat deposition and progression of atherosclerosis, depending on the specific HT agent or its route of administration. Our objective was to evaluate the effects of different HT agents, oral and transdermal, on associations between heart fat accumulation and atherosclerosis progression, measured by carotid intima-media thickness (CIMT), in recently menopausal women from the Kronos Early Estrogen Prevention Study (KEEPS) trial. Methods: KEEPS was a randomized, placebo-controlled trial of the effects of 0.45 mg/d oral conjugated equine estrogens (o-CEE) or 50 mcg/d transdermal 17 beta-estradiol (t-E-2), compared with placebo, on 48 months progression of CIMT. Epicardial adipose tissue (EAT) and paracardial adipose tissue (PAT) volumes were quantified by computed tomography. Results: In all, 467 women (mean age [SD] 52.7 [2.5]; 78.2% White; 30% on o-CEE, 30.8% t-E-2, 39.2% placebo) with heart fat volumes and CIMT at baseline and 48 months were included. EAT and PAT changes were not associated with CIMT progression; however, the assigned treatment significantly modified the association between PAT (but not EAT) change and CIMT progression. In the o-CEE group, adjusted CIMT progression was 12.66 mu m (95% confidence interval [CI] 1.80, 23.52) lower than in t-E-2 group (P = 0.02), and 10.09 mu m (95% CI 0.79, 19.39) lower than in placebo group (P = 0.03), as per 1-SD increase in PAT. Conclusion: Compared with t-E-2, o-CEE appears to slow down the adverse effect of increasing PAT on progression of atherosclerosis. Whether this beneficial association is specific to CEE or to the oral route of CEE administration is unclear and should be assessed further.
Background: Standardization of performance-based physical function measures that are reliable and responsive to intervention is necessary for efficacy trials of function promoting anabolic therapies (FPTs). Herein, we describe a standardized method of measuring stair climbing power (SCP) and evaluate its ability to assess improvements in physical function in response to an FPT (testosterone) compared to gait speed. Methods: We used a 12-step SCP test with and without carrying a load (loaded, LSCP or unloaded, USCP) in two testosterone trials in older men. SCP was determined from mass, total step-rise, and time of ascent measured with an electronic timing system. Associations between SCP and leg press performance (strength and power), testosterone levels, and gait speed were assessed. Test-retest reliability was evaluated using interclass correlation and Bland-Altman analyses. Results: Baseline SCP was negatively associated with age and positively with leg strength and power and gait speed. Both tests of SCP were safe and showed excellent reliability (intra-class correlation 0.91-0.97 in both cohorts). Changes in testosterone concentrations were associated with changes in USCP and LSCP, but not gait speed in mobility-limited men. Changes in leg press performance were associated with SCP in both trials. Conclusions: Both USCP and LSCP are safe and have high test-retest reliability. Compared to gait speed, SCP is associated more robustly with leg press performance and is sensitive to testosterone therapy. The LSCP might be a more responsive outcome than gait speed to evaluate the efficacy of FPT in randomized trials.
The Kronos Early Estrogen Prevention Study (KEEPS) was a randomized, double-blind, placebo-controlled trial designed to determine the effects of hormone treatments (menopausal hormone treatments [MHTs]) on the progression of carotid intima-medial thickness (CIMT) in recently menopausal women. Participants less than 3 years from menopause and without a history of overt cardiovascular disease (CVD), defined as no clinical CVD events and coronary artery calcium < 50 Agatston units, received either oral conjugated equine estrogens (0.45 mg/day) or transdermal 17β-estradiol (50 µg/day), both with progesterone (200 mg/day for 12 days/month), or placebo pills and patches for 4 years. Although MHT did not decrease the age-related increase in CIMT, KEEPS provided other important insights about MHT effects. Both MHTs versus placebo reduced the severity of menopausal symptoms and maintained bone density, but differed in efficacy regarding mood/anxiety, sleep, sexual function, and deposition of β-amyloid in the brain. Additionally, genetic variants in enzymes for metabolism and uptake of estrogen affected the efficacy of MHT for some aspects of symptom relief. KEEPS provides important information for use of MHT in clinical practice, including type, dose, and mode of delivery of MHT recently after menopause, and how genetic variants in hormone metabolism may affect MHT efficacy on specific outcomes.
PurposeGrowth hormone (GH) replacement decreases insulin sensitivity in healthy individuals. However, the effects of GH on organ-specific insulin sensitivity and glucose effectiveness are not well characterized. The purpose of this study was to evaluate the effects of GH administration for 26 weeks on muscle and hepatic insulin sensitivity and glucose effectiveness in healthy older individuals.MethodsThis report is from a 26-week randomized, double-blind, placebo-controlled parallel-group trial in healthy, ambulatory, community-dwelling older women and men. We compared surrogate indices of insulin sensitivity [quantitative insulin-sensitivity check index (QUICKI), muscle insulin sensitivity index (MISI), hepatic insulin resistance index (HIRI)] and glucose effectiveness [oral glucose effectiveness index (oGE)] derived from oral glucose tolerance tests (OGTTs) in subjects before and after 26 weeks of administration of GH (n=17) or placebo (n=15) as an exploratory outcome.ResultsGH administration for 26 weeks significantly increased fasting insulin concentrations and HIRI but did not significantly change MISI or oGE compared to placebo.ConclusionsGH administration for 26 weeks in healthy older subjects impairs insulin sensitivity in the liver but not skeletal muscle and does not alter glucose effectiveness.
Objective: Heart fat depots, within [epicardial adipose tissue (EAT)] and outside [paracardial adipose tissue (PAT)] the pericardium, have been linked to carotid atherosclerosis in various populations. Postmenopausal women have greater volumes of heart fat than premenopausal women. Our previous work suggests that lower endogenous estrogen may contribute to heart fat accumulation, although possibly limited to PAT, while postmenopausal oral hormone therapy (HT) may slow its progression. We evaluated the effect modification of HT use over 48 months on associations between heart fat accumulation and carotid artery intima-media thickness (CIMT) progression in recently postmenopausal women. Methods: The Kronos Early Estrogen Prevention Study (KEEPS) was a multi-center, randomized, double-blind placebo-controlled trial to investigate effects over 48 months of oral conjugated equine estrogens (o-CEE) and transdermal 17β-estradiol (t-E2), both given with cyclic progesterone, compared to placebo, on progression of CIMT in recently postmenopausal women. EAT and PAT volumes, and CIMT were measured at baseline and at 48 months. Associations between the absolute changes in heart fat volumes and CIMT as well as effect modification by HT type were tested using linear regression, adjusting for age, race, study site, employment status, diastolic and systolic blood pressure, anti-hypertensive medications, insulin resistance index, lipids, body-mass index, smoking, alcohol consumption, C-reactive protein, and adipokines. Results: Of 727 randomly assigned women, 467 [mean age (SD): 52.7(2.5); 78.2% Caucasian] had heart fat volumes and CIMT measured at both time points. Overall, changes in EAT and PAT were not associated with CIMT progression; however, assigned treatment significantly modified the association between changes in PAT, but not EAT, and CIMT progression in unadjusted model, P=0.04. In o-CEE group, CIMT progression was 0.028mm (SE:0.01mm) lower, per 1 unit increase in log PAT, than in t-E2 group, P=0.01, and trended 0.017mm (SE:0.01mm) lower than in placebo group, P=0.09. Although adjusted analysis attenuated these findings (P-value for interaction 0.09), differences between o-CEE and t-E2 groups remained significant, P=0.03. Conclusion: HT use modified the association between PAT accumulation, but not EAT, and CIMT progression. Our results suggest a potential beneficial impact of o-CEE (but not transdermal E2) on the relationship between adverse changes in PAT and CIMT. The current findings support the notion that EAT and PAT are distinct fat depots and suggest a complex role of HT in the association between heart fat and CIMT progression in recently postmenopausal women.
Changes in pituitary-ovarian hormones across the menopausal transition have multiple physiological consequences. However, little is known about how the major types of postmenopausal hormone therapy (HT) affect pituitary-ovarian hormonal relationships. This study evaluated these relationships in recently menopausal women (52.45 ± 2.49 yr of age) in the Kronos Early Estrogen Prevention Study (KEEPS) who were compliant to randomized, double-blinded treatment with oral conjugated equine estrogen (o-CEE; n = 109), transdermal 17β-estradiol (t-E2; n = 107), or placebo ( n = 146). Androstenedione, testosterone, 17β-estradiol, estrone, follicle-stimulating hormone (FSH), and luteinizing hormone (LH) were measured in serum before (baseline) and 48 mo after randomization to treatment. Descriptive summaries of hormone levels were performed, and multiple regression analyses were used to examine the effects of o-CEE, t-E2, and placebo on these hormone levels at 48 mo, adjusting for baseline levels. A network analysis examined the covariance of changes in hormone levels over the 48 mo within treatment groups. As expected, at 48 mo of treatment, hormone levels differed between women in the two active treatment groups compared with placebo, and network analysis indicated stronger relationships among hormone levels in the t-E2 and o-CEE groups compared with placebo. Associations among testosterone, 17β-estradiol, FSH, and LH differed between the o-CEE group compared with t-E2 and placebo groups. Thus, two common HT regimens differentially alter pituitary-ovarian hormone levels, altering feedback cycles and interhormonal associations in recently menopausal women. These interactions provide the basis for future studies investigating the impact of hormonal modulation of aging, including cognitive decline in women.
Background Heart fats (epicardial and paracardial adipose tissue [PAT]) are greater after menopause. Endogenous estrogen may regulate these fat depots. We evaluated the differential effects of hormone therapy formulations on heart fat accumulations and their associations with coronary artery calcification ( CAC ) progression in recently menopausal women from KEEPS (Kronos Early Estrogen Prevention Study). Methods and Results KEEPS was a multicenter, randomized, placebo‐controlled trial of the effects of 0.45 mg/d oral conjugated equine estrogens and 50 µg/d transdermal 17β‐estradiol, compared with placebo, on 48‐month progression of subclinical atherosclerosis among 727 early menopausal women. CAC progression was defined if baseline CAC score was 0 and 48‐month CAC score was >0 or if baseline CAC score was >0 and <100 and annualized change in CAC score was ≥10. Of 727 KEEPS participants, 474 (mean age: 52.7 [SD: 2.6]; 78.1% white) had computed tomography–based heart fat and CAC measures at both baseline and 48 months. Compared with women on placebo, women on oral conjugated equine estrogens were less likely to have any increase in epicardial adipose tissue (odds ratio for oral conjugated equine estrogens versus placebo: 0.62 [95% CI, 0.40–0.97]; P =0.03). PAT did not change in any group. Changes in epicardial adipose tissue and PAT did not differ by treatment group. CAC increased in 14% of participants. The assigned treatment modified the association between PAT changes and CAC progression ( P =0.02) such that PAT increases were associated with CAC increases only in the transdermal 17β‐estradiol group. Conclusions In recently menopausal women, oral conjugated equine estrogens may slow epicardial adipose tissue accumulation, whereas transdermal 17β‐estradiol may increase progression of CAC associated with PAT accumulation. Clinical Trial Registration URL : http://www.clinicaltrials.gov . Unique identifier: NCT 00154180.
Background:Serum testosterone levels and insulin sensitivity both decrease with age. Severe testosterone deficiency is associated with the development of insulin resistance. However, the effects of long-term testosterone administration on insulin sensitivity in older men with low or low-normal testosterone levels remain unknown.Methods:The Testosterone Effects on Atherosclerosis in Aging Men Trial was a placebo-controlled, randomized, double-blind trial. The participants were 308 community-dwelling men, ≥60 years old, with total testosterone 100 to 400 ng/dL or free testosterone <50 pg/mL. A subset of 134 nondiabetic men (mean age, 66.7 ± 5.1 years) underwent an octreotide insulin suppression test at baseline and at 3 and 36 months after randomization to measure insulin sensitivity. Insulin sensitivity was estimated as the steady-state plasma glucose (SSPG) concentration at equilibrium during octreotide and insulin administration. Secondary outcomes included total lean mass (TLM) and total fat mass (TFM) by dual energy x-ray absorptiometry.Results:There was a significant (P = 0.003) increase in SSPG in the placebo group, whereas no change was seen in testosterone-treated subjects from baseline to 36 months; however, the between-group differences in change in SSPG over 3 years were not statistically significant (+15.3 ± 6.9 mg/dL in the placebo group vs +6.2 ± 6.4 mg/dL in the testosterone group; mixed-model effect, P = 0.17). Changes in SSPG with testosterone treatment were not associated with changes in serum total or free testosterone concentrations. Changes in TFM but not TLM were associated with increases in SSPG. Stratification by age or baseline total testosterone level did not show significant intervention effects.Conclusion:Testosterone administration for 36 months in older men with low or low-normal testosterone levels did not improve insulin sensitivity.