Human
Advanced age is one of the major obstacles in achieving a clinical pregnancy and live birth. The gathered evidence has proven that advanced age can affect oocyte quantity, oocyte quality and, eventually, embryo quality, which can be accountable for pregnancy loss, decreased implantation rate, and complications in pregnancy outcome ( Cimadomo et al. , 2018 ; Zhang et al. , 2020 ). This can be resolved to some extent with the transfer of embryos generated by fertilizing donor oocytes retrieved from younger women ( Seshadri et al. , 2021 ). The success of oocyte donation can be influenced by various factors, for example, the age of the oocyte donor and recipient, clinical indication for oocyte donation, embryo quality, endometrial thickness and blood flow in the recipient ( Moomjy et al. , 1999 ; Noyes et al. , 2001 ; Huang et al. , 2008 ; Braga et al. , 2020 ). Although the donor’s age can be controlled in oocyte donation, the effect of the recipient’s age on the endometrial receptivity can be a critical factor in the success of oocyte donation cycles and thus cannot be overlooked. In human studies, oocyte donation may therefore serve as a good model to evaluate the endometrial-associated factors independent of oocyte quality in women of advanced age.
The respective studies can be divided into three main groups based on their inclusion criteria and study design ( Fig. 4 and Table 1 ): studies including healthy, younger oocyte donors and recipients with advanced age to deduce the effect of recipient’s age on endometrial receptivity; studies in which the oocytes donated from single young and healthy woman were distributed amongst the recipients of younger and advanced age; and studies undertaken wherein the infertile patients undergoing IVF had shared their oocytes with other recipients of advanced age, thus indicating the effect of age on endometrial receptivity between IVF cycles using own oocyte and donated oocytes using the same pool of oocytes retrieved from same women.
Oocyte donation: a model to study recipient aging and her endometrial receptivity. The reported studies have been divided into three arms: oocytes donated by healthy oocyte donors which were transferred to younger recipients or those of advanced age (left); a single pool of oocytes donated by a young woman and distributed among young and advanced age recipients (middle); and infertile patients undergoing IVF who had shared their oocytes with other recipients of advanced age: standard IVF with own oocytes versus IVF with donated oocytes (right). AA, advance age. Created with BioRender.com ( https://biorender.com/ ).
Summary of studies performed in oocyte donation IVF cycles to determine the impact of advanced age on endometrial receptivity.
AA: advanced age.
ER: endometrial receptivity.
IR: implantation rate.
PR: pregnancy rate.
In this group, young oocyte donors had donated their oocytes to the recipients of advanced age ( Table 1 and Fig. 4 ; Supplementary Table S1 ). Several studies in this group have reported that the recipient’s age had no impact on endometrial receptivity ( Balmaceda et al. , 1994 ; Sauer et al. , 1994 ; Legro et al. , 1995 ; Paulson et al. , 1997 ; Mirkin et al. , 2003 ; Wang et al. , 2012 ). The studies, including both fresh and frozen embryo transfer cycles with the recipient age groups ranging from 23 to 54 years, revealed no significant differences in endometrial thickness, pregnancy rate, miscarriage rate, and implantation rate among the different age groups of recipients ( Balmaceda et al. , 1994 ; Mirkin et al. , 2003 ). However, this result applies only to patients having endometrial thickness ≥8 mm because the pregnancy rate was observed to drop from 45% to 17% in the recipients with an endometrial thickness of 4–8 mm ( Mirkin et al. , 2003 ). Comparable findings were reported in the studies where the recipient’s age had no impact even on the cumulative pregnancy rate and cumulative live birth rate after four consecutive cycles ( Paulson et al. , 1997 ; Remohi et al. , 1997 ).
On the other hand, a decreased pregnancy rate was observed with increasing age of recipients ( Yaron et al. , 1998 ). Another study demonstrated a drastic decline in endometrial receptivity, with a reduction in the delivery rate from 46% to 21% and an elevation of the abortion rate from 17% to 41% as the recipient’s age increased over 40 years ( Meldrum, 1993 ). This study postulated that the distribution of ER in endometrium decreases with age, which further causes the downregulation of PR leading to impairment in the endometrial microenvironment, making it unfavourable for implantation. The endometrial receptivity was restored, as shown by an increase in the delivery rate from 21% to 54%, by administering a higher dose of exogenous P4 from 50 to 100 mg in advanced-age recipients ( Meldrum, 1993 ). Similarly, the implementation of additional P4 improved the clinical pregnancy rate significantly from 24% to 66% in recipients aged 40 years and above ( Weckstein et al. , 1993 ). However, one study ( Abdalla et al. , 1990 ) reported a steady decline in pregnancy rate from 50% to 9.7% among the group of recipients aged 25–29 and 45–49 years, respectively, even after prescribing a sufficiently higher dose of P4. Still, these studies collectively highlight that the aged endometrium with altered uterine vasculature and dysregulated PR can potentially restore the receptive potential upon supplementation of additional P4.
Furthermore, an analysis of national data on oocyte donation IVF cycles of the US registry in 2002 ( Toner et al. , 2002 ) revealed that the implantation rate, pregnancy rate, and delivery rate were stable for the recipient’s age group ranging from 25 to 40 years, whereas a decline in fecundity was reported in women of advanced age, in their late 40s. In 2014 ( Yeh et al. , 2014 ), the US national registry inferred a cut-off of 45 years for the decline in female fertility; more specifically it showed that the age group of 45–49 years can be designated as a transitional period for recipients, which indicates the gradual decrease in pregnancy success. A similar cut-off point of 45 years that affects female fertility was found in a study with a large sample size of 3089 donation cycles ( Soares et al. , 2005 ). However, a clinical diagnosis of the recipient may also determine the effect of the recipient’s age on endometrial receptivity. For example, a direct correlation of a decline in implantation rate with increasing age has been found in recipients with tubal disease ( Moomjy et al. , 1999 ).
Furthermore, to increase the specificity and precision, the oocytes from a single pool donated by a young and healthy woman were distributed among recipients of advanced age and of younger ages ( Table 1 and Fig. 4 ; Supplementary Table S2 ). In such types of studies, the effect of endometrial aging can be assessed precisely as the parameter of oocyte quality remains constant. One such study reported no significant difference in implantation rate and delivery rate among the recipients aged <40 and ≥40 years, for an even and random distribution of oocytes ( Navot et al. , 1994 ). The study by Noyes et al. (2001) had similar findings of showing no effect of the recipient’s age on the live birth rate; however, the live birth rate significantly lowered as the endometrial thickness was <8 mm.
In another study, the oocytes donated by fertile as well as by infertile women undergoing IVF were divided evenly between younger and older recipients, with an age limit of 40 years ( Cano et al. , 1995 ). Although the implantation rate between the two groups of recipients did not show any significant difference, the abortion rate was significantly higher in older recipients owing to impaired uterine vascularization and late secretion of E2 and P4 by the placenta, reducing its functional efficacy.
As the factors associated with oocyte donors can be controlled, the importance of the careful selection of donors to improve the success rate of IVF needs to be considered ( Harris et al. , 2002 ). Moreover, it has been observed that the donor’s parity and the history of miscarriage can have a causal effect on the probability of pregnancy in their corresponding recipients ( Harris et al. , 2002 ).
Some studies have been undertaken wherein the infertile patients undergoing IVF shared their oocytes with recipients of advanced age, thus comparing standard IVF cycles using women’s own oocytes and IVF cycles with donated oocytes ( Table 1 and Fig. 4 ; Supplementary Table S3 ). Using this study design, both oocyte aging and endometrial aging can be studied simultaneously. Such studies, wherein the donors and advanced-aged recipients had received the unselected oocytes from the same cohort, revealed a similar clinical pregnancy rate in recipients and donors irrespective of age ( Navot et al. , 1991 ; Check et al. , 1994 ).
On the contrary, other reports with a similar study design have shown an age-related negative impact on endometrial aging. These reports suggest a decline in endometrial receptivity among older recipients compared with younger donors who have undergone the embryo transfer with their own oocyte ( Levran et al. , 1991 ; Check et al. , 1993a ; Borini et al. , 1996 ; Braga et al. , 2020 ). Overall, the literature on treatment options for oocyte donation in women of advanced age showed very ambiguous inferences based on endometrial aging.
Effect
During the normal menstrual cycle, two distinct peaks of serum E2 levels are observed. The first peak occurs during the proliferative phase and is associated with the increased expression of endometrial E2 receptors ERα, ERβ, and GPER inducing mitogenic activity ( Giudice, 2006 ; Yu et al. , 2022 ). The progesterone dominated secretory phase is accompanied by lower levels of estradiol and ERα than the proliferative phase ( Dockery and Rogers, 1989 ; Critchley et al. , 2020 ; Yu et al. , 2022 ). During the mid-secretory phase, the second peak of E2 coincides with the WOI and increasing levels of P4. The action of P4 stimulates the decidualization process that enables the receptivity status of the endometrium ( Yu et al. , 2022 ). In the case of successful embryo implantation, the pregnancy is maintained in response to the higher levels of E2 and P4. In the absence of implantation, decreased levels of E2 and P4 lead to the initiation of the menstrual phase ( Ruiz-Alonso et al. , 2012 ; Critchley et al. , 2020 ).
The serum concentration of E2 across the ovulatory menstrual cycles is variable among women of advanced age. According to the studies performed, the average serum E2 concentrations decreased with age from 42–45 to 52–55 years, with a steep decline towards higher ages ( Burger et al. , 1999 ; Randolph et al. , 2004 ). However, another cross-sectional study showed similar follicular E2 levels among women in early and mid-reproductive age (21–45 years) as well as for the age group of >45 years ( Hale et al. , 2007 ). Conversely, a separate study ( Burger et al. , 2008 ) during ovulatory cycles revealed that the serum E2 levels in the follicular phase were elevated in older women (>45 years) compared to younger women (21–35 years). This age-related unexpected increase in E2 levels in the follicular phase were explained by the hypothesis that the feedback mechanism operating via inhibin B secretion is affected earlier than E2 secretion. As follicle numbers decrease with age, it first affects the inhibin B secretion instead of E2, leading to declined levels of inhibin B, which is associated with the consequent increase in FSH levels. This, eventually, can result in elevating E2 production by granulosa cells ( Burger et al. , 2008 ). Thus, the evidence implies that advanced age affects the hypothalamic pituitary–ovarian axis, with fluctuating levels of E2 in the follicular phase of ovulatory cycles in the late-reproductive stage compared to younger women. The close correlation between E2 levels and endometrial proliferation suggests that abnormal E2 concentrations in older women may have a detrimental effect on endometrial growth and thickness. Moreover, during the secretory phase, serum levels of E2 and P4 decrease progressively with age ( MacNaughton et al. , 1992 ), which further can influence cellular differentiation during endometrial receptivity.
The age-dependent variation in E2 and P4 levels may have a considerable impact on the endometrium by altering the endometrial expression of their corresponding cellular receptors. Furthermore, the age-related endometrial downregulation of ER and P4 receptors (PR) has been demonstrated in the endometrial tissue. Additionally, the decreased capacity of the endometrium to take up these steroids ( Larson et al. , 1972 ; Blaha and Leavitt, 1974 ; Saiduddin and Zassenhaus, 1979 ) was associated with increased collagen and fibrosis in endometrial tissue ( Ohta, 1987 ; Nelson et al. , 2013 ). The mouse model study also exhibited impaired hormonal responsiveness in aged mice as around 50% of de-regulated genes in aged decidua were associated with ERα and/or PR. Additionally, expression of ER and PR was more variable in aged mice showing mosaic staining patterns in luminal epithelium versus homogenous expression in young mice ( Woods et al. , 2017 ). In human endometrium, the expression of cytosolic ER has been reported to change with age, being highest in the 30–39 years age group compared to the 20–29 years and 40–55 years age groups. On the other hand, the nuclear ER and PR showed an age-dependent decrease in the endometrium of women aged 20–29, 30–39, 40–49, and above 50 years ( Bergqvist and Ferno, 1993 ). Furthermore, the staining of epithelial cell nuclei positive for ERα was 100% on the day of oocyte retrieval among healthy oocyte donors aged 30 years of age, showing an age-related decline in the expression of ERα ( Klonos et al. , 2020 ). In contrast, another study showed similar expression of ER and PR in both age groups of women 40 years, indicating that there was no effect of age on the endometrial function until menstruation is present ( Noci et al. , 1995 ). Similarly, functionally agonadal women in the different age groups from 25 to 60 years showed a similar effect of hormone replacement therapy on histologic and ultrasonographic characteristics of the endometrium, as well as expression of ER and PR, regardless of their age ( Sauer et al. , 1993 ). Thus, more detailed age-dependent studies on the levels and distributions of steroid hormone receptors are needed to determine their causal effect on endometrial aging. Nevertheless, empirical evidence suggests abnormal levels of ovarian hormones and their receptors in older women, indicating the direct influence on endometrial proliferation, receptivity, and overall functioning.
E2 and P4 are responsible for achieving the desired endometrial thickness, which is a pre-requisite for the implanting embryo. Endometrial morphology can be assessed using ultrasonographic techniques to measure the thickness and study the echogenic pattern of the endometrium, both of which vary during each phase of the natural menstrual cycle in healthy fertile women ( Fitzgerald et al. , 1994 ). Although there is no consensus about the minimum endometrial thickness that is favourable for the implantation of the embryo, clinical pregnancy has been achieved in women with endometrial thickness as low as 4 mm and as high as 16 mm ( Ugwu et al. , 2022 ). On the other hand, an endometrial thickness of 7 mm has been reported to be a pre-requisite for implantation ( Tomic et al. , 2020 ; Ugwu et al. , 2022 ), followed by an increase in implantation rate when the endometrium increases from 8 to 11 mm, whereas when the endometrial thickness increases to >14 mm, it showed a dramatic decrease in implantation rate ( Eftekhar et al. , 2019 ; Ugwu et al. , 2022 ). The assessment of endometrial thickness in different age groups of healthy women revealed that the endometrium was significantly thicker during the mid-secretory phase compared to ovulation day in all the age groups. Further, it was observed that in women aged 32–36 years and 37–45 years, the maximum thickness reached during the secretory phase was 15.3 and 15.9 mm, respectively, which was significantly higher than in younger age groups of 21–25 and 26–31 years showing a maximum thickness of 12.1 and 13.4 mm, respectively ( Fitzgerald et al. , 1994 ). However, the extrapolation of this age-related difference in endometrial thickness and its effect on pregnancy rate has not been established. In IVF cycles, studies have reported a positive correlation of endometrial thickness with pregnancy rate ( Richter et al. , 2007 ; Yang et al. , 2018 ) whereas other studies did not find any significant association between these parameters ( Žáčková et al. , 2009 ; Gingold et al. , 2015 ).
Some studies suggest that endometrial patterns, such as triple-line configuration, patterns of a hyperechoic endometrium, and the presence of a central echogenic line detected by ultrasound as well as by the evaluation of endometrial blood flow, have more impact on the implantation potential as compared to endometrial thickness ( Gonen and Casper, 1990 ; Järvelä et al. , 2005 ; Gingold et al. , 2015 ; Navinchandra et al. , 2016 ). Studies have also reported the combined approach of endometrial pattern together with thickness, and a scoring system for the prediction of pregnancy success during IVF ( Baruffi et al. , 2002 ; Chen et al. , 2010 ; Gingold et al. , 2015 ; Khan et al. , 2016 ; Navinchandra et al. , 2016 ; Ugwu et al. , 2022 ; Zhang et al. , 2022 ). An IVF study reported that the triple-line endometrial pattern observed on the day of the administration of hCG was associated with an improved pregnancy rate compared to the homogenous, hyperechogenic, or intermediate endometrial pattern ( Gingold et al. , 2015 ). However, as for endometrial thickness, there are conflicting conclusions even on the correlation of endometrial pattern with pregnancy rate ( Gonen and Casper, 1990 ; Check et al. , 1993b ; Järvelä et al. , 2005 ; Potlog-Nahari et al. , 2005 ; Rashidi et al. , 2005 ; Mercé et al. , 2008 ; Ugwu et al. , 2022 ), without the information on age-related shift. The endometrial thickness and pattern can be used as prognostic indicators for endometrial receptivity; however, these features have not been well accepted as sole predictive markers for successful implantation ( Navinchandra et al. , 2016 ). Additionally, detailed information regarding age-related alterations in endometrial morphology and thickness is not yet available. Since these parameters have direct clinical implications, further precise research studies and randomized controlled clinical trials evaluating the impact of age on endometrial thickness and echogenic pattern, and their correlation with pregnancy outcome, would prove to be constructive.
Aging is a complex and multifactorial biological process that promotes time-dependent deterioration of tissue function across multiple organ systems. Aging is a result of cumulative changes caused by several stimuli, such as telomere shortening, epigenetic changes, DNA damage, oxidative stress, chronic mitogen signalling, and mitochondrial dysfunction over a period, which leads to cell proliferation arrest and a decline in cellular function ( McHugh and Gil, 2018 ; Deryabin et al. , 2020 ; Di Micco et al. , 2021 ). Additionally, exogenous sources, including ionizing radiation and environmental toxins, can contribute as stressors resulting in cellular senescence ( Fig. 2 ) ( Todhunter et al. , 2018 ; Kumari and Jat, 2021 ; Yousefzadeh et al. , 2021 ). At the level of a single cell, aging is closely associated with the underlying biological process called cellular senescence. Cellular senescence is the irreversible cell cycle arrest of not only proliferative cells but also post-mitotic cells ( Sapieha and Mallette, 2018 ; Anderson et al. , 2019 ; Maduro et al. , 2021 ). Apart from aging, cellular senescence can also be caused by the response to damage induced by stressors, even in non-aged cells ( Todhunter et al. , 2018 ; Deryabin et al. , 2020 ). However, under the influence of an appropriate microenvironment, naturally occurring senescence in healthy cells attracts the immune cells to eliminate them to protect against possible tumour development ( Deryabin et al. , 2020 ). Thus, not all senescent cells are aged cells, but cellular senescence is the main hallmark of the aging process.
Cellular senescence in normal and aged cells. The phenomenon of cellular senescence occurs in different types of human tissues, including endometrium. It involves the transformation of both proliferative and post-mitotic cells into senescent cells in response to various types of stressors. These stimuli can be telomere shortening, epigenetic changes, DNA damage, oxidative stress, chronic mitogen signalling, and mitochondrial dysfunction over a period, which leads to cell proliferation arrest. Additionally, exogenous sources, such as ionizing radiation, ultraviolet light, and environmental toxins, can contribute as stressors resulting in cellular senescence. In normal conditions, the fully senescent cells are targeted by immune cells to be eliminated from the immune system, whereas during circumstances of aging the immune system is unable to clear senescent cells, which leads to the accumulation of senescence-associated secretory phenotype (SASP) and a persistent pro-inflammatory environment. Created with BioRender.com ( https://biorender.com/ ).
Aging-associated cellular senescence modulates the cell mechanics and organization of the extracellular matrix (ECM) ( Fig. 2 ). It alters the functioning of intracellular organelles, including the plasma membrane, ribosomes, proteosomes, mitochondria, and lysosomes, changes the morphology of nuclear structures, and dysregulates gene expression as well as epigenetic modifications of DNA and histones ( Borodkina et al. , 2018 ; Ogrodnik et al. , 2019 ). Additionally, as a response to DNA damage, the senescent cells secrete several pro-inflammatory cytokines, chemokines, growth factors, and matrix metalloproteinases, which are collectedly termed the ‘senescence-associated secretory phenotype (SASP)’ ( Borodkina et al. , 2018 ; Deryabin et al. , 2020 ; Maduro et al. , 2021 ). In a normal healthy scenario, controlled secretion of SASP is reported to be beneficial and allows the clearance of senescent cells by elicitation of the immune response and replacing them with adjacent progenitor cells via paracrine signalling to achieve tissue regeneration ( Deryabin et al. , 2020 ; Deryabin and Borodkina, 2022 ). However, the accumulation of senescent cells in the aged tissues of humans, primates, and rodents has been demonstrated ( Herbig et al. , 2006 ; Wang et al. , 2009 ; van Deursen, 2014 ), characterizing it as chronic senescence. A predominant drawback of this chronic aging process is the inefficiency of the body’s immune system to eliminate senescent cells, for various reasons: an increased rate of senescence with age; age-associated immunodeficiency in the innate and adaptive immune systems, reducing the potential for senescent-cell clearance; and dysfunction in haematopoietic stem cells with age, thus compromising the immune system ( Fig. 2 ) ( van Deursen, 2014 ). In this scenario, the senescent, aged cells continue to be increasingly dependent on the cell cycle checkpoints leading to the arrest of the proliferation state for a longer period, which is associated with the accumulation of SASP secretion ( van Deursen, 2014 ; Deryabin et al. , 2020 ). The accumulated population of senescent cells and SASP results in disruption of the tissue structure, cleavage of membrane-bound receptors, impairment in cellular signalling, and dysfunction of the ECM. Elevated levels of pro-inflammatory cytokines, such as IL-6 and IL-8, stimulate chronic inflammation and the infiltration of macrophages and lymphocytes, and induces tissue fibrosis ( Coppé et al. , 2008 ; Campisi, 2013 ; van Deursen, 2014 ). Thus, aging exhibits tissue-specific changes, which ultimately influence its functioning.
Decidualization involves several biological functions including cell differentiation, immune and inflammatory responses, transcription regulation, negative regulation of cell proliferation, coagulation, complement cascade, ECM organization, vascularization, and tissue remodelling ( Okada et al. , 2018 ). In humans, decidualization occurs in every menstrual cycle irrespective of the presence of an embryo ( Teklenburg et al. , 2010 ), unlike other species, such as rodents, where the signalling of the blastocyst initiates decidualization ( Das, 2010 ). Thus, in humans, decidualization is solely induced by the maternal system through various transcription factors that mediate negative regulation of endometrial stromal cell (ESC) proliferation by cessation of the cell cycle at the G0/G1 phase ( Rytkönen et al. , 2019 ; Deryabin et al. , 2020 ). It induces the endometrial expression of insulin-like growth factor-binding protein-1 (IGFBP-1) and prolactin, which are decidualization markers, and thus stimulates the differentiation of ESCs into decidual cells ( Okada et al. , 2018 ) ( Fig. 3a ). This transformation opens the WOI and is accompanied by the recruitment of monocytes and other immune cells from the circulation including uterine natural killer (uNK) cells ( Mori et al. , 2016 ). Endometrial decidual cells and immune cells secrete an array of pro-inflammatory mediators, such as tumour necrosis factor α, IL2, IL12, prokineticin 1, and interferon γ (IFNG), as well as chemokines, and cytokines such as C-X-C motif chemokine ligand 12 (CXCL12), CXCL14, leukemia inhibitory factor, IL1β, IL11, and IL-6. Additionally, other important factors involved in embryo implantation, such as growth factors like epidermal growth factor (EGF), heparin-binding EGF, insulin-like growth factor 1 (IGF1), and morphogenesis proteins Indian hedgehog, Wnt family member 4, and bone morphogenetic protein 2 (BMP2) also play crucial roles ( Achache and Revel, 2006 ; Ruiz-Alonso et al. , 2012 ). Moreover, the nuclear factor kB-dependent signalling pathways via ER are activated to promote cellular inflammation during the WOI ( King et al. , 2010 ). Although the proinflammatory milieu in the endometrium during decidualization is essential, it is a time-dependent and well-regulated phase limited to the initiation of WOI. Later, the decidual process shifts from the expression of a pro-inflammatory to an anti-inflammatory profile, to secrete the anti-inflammatory hormone cortisol, other anti-inflammatory factors, and cytokines, such as IL-4, IL-5, and IL-10 ( Deryabin et al. , 2020 ), which protect the semi-allogeneic embryo from the maternal immune system ( Fig. 3a ). An anti-inflammatory condition is thus maintained until delivery in case of a successful pregnancy; otherwise, in the absence of fertilization, a reducing level of P4 triggers the vasoconstriction of blood vessels and induces menstrual bleeding.
Relation between decidualization and cellular senescence in normal conditions and during the aging process. ( a ) Normal physiological conditions: in the mid-secretory phase, under the influence of P4 and cAMP, the endometrial stromal cells escape from the cell cycle at the G0/G1 phase and undergo cell differentiation pathways to transform into decidual cells, in the process called decidualization. In the initial phase during decidualization, the subpopulation of senescent cells is present along with the mature decidual cells. Senescence-associated secretory phenotype (SASP) manifested by the endometrial cells is essential for developing an adequate pro-inflammatory response required for the secretion of cytokines, chemokines, and cell adhesion ligands that are pre-requisites for embryo implantation. In the later phase, mature senescent cells are targeted by the immune cells, decreasing the levels of SASP and shifting the endometrial milieu to the anti-inflammatory response that is required to maintain a semi-allogeneic embryo during the pregnancy. ( b ) During the aging process: in a chronic condition like aging, the immune cells cannot eliminate the mature senescent cells during decidualization. This results in the accumulation of pre-senescent, fully senescent cells and secreted SASP causing persistent unregulated pro-inflammation during mid-secretory endometrium. This fails to maintain the inflammatory balance leading to impaired decidualization and defective endometrial receptivity. Created with BioRender.com ( https://biorender.com/ ).
The induction of successful decidualization is associated with the presence of senescence markers in decidual ESCs ( Deryabin et al. , 2020 ). Senescence-specific protein p16 was upregulated in a subpopulation of ESCs, which was characterized as senescent decidual cells because they expressed genes involved in the cellular senescence pathway ( Brighton et al. , 2017 ). Furthermore, the study infers that an adequate degree of senescence is responsible for producing a sub-population of senescent decidual cells, which is a pre-requisite for the decidualization process. A recent study using single-cell RNA sequencing confirmed the presence of both mature decidual cells along with a senescent decidual subpopulation that occurred after normal ESC decidualization ( Lucas et al. , 2020 ). Thus, the initial pro-inflammatory response during decidualization is the result of the presence of mature, as well as senescent, decidual cells. The intensity of this pro-inflammatory response depends on the degree of the pre-senescent population of ESCs ( Deryabin et al. , 2020 ; Lucas et al. , 2020 ). Senescent decidual cells also secret IL15, which is one of the essential decidualization markers, that activates peripheral NK cells and transforms them into tissue-resident uNK cells. Transformed uNK cells are CD54+ and CD16-, without their cytotoxicity property, which are essential for vascularization and spiral artery remodelling during the implantation and placentation process ( Jabrane-Ferrat and Siewiera, 2014 ; Brighton et al. , 2017 ; Sojka et al. , 2019 ; Zhang and Wei, 2021 ). Furthermore, in the later phase of decidualization, the generated senescent decidual subpopulation was eliminated by uNK cells without affecting mature decidual cells, which are essential for embryo implantation and invasion ( Fig. 3a ) ( Brighton et al. , 2017 ), suggesting that the NK cells play a central role in endometrial cellular senescence.
Recently, the age-dependent depletion of NK cell functions has been demonstrated ( Brauning et al. , 2022 ). As a result of this, under the conditions of age-associated alterations, unlike the normal decidualization process, uNK cells lose their ability to eliminate senescent decidual cells and fully senescent ESCs ( Deryabin et al. , 2020 ). Thus, this leads to the generation and accumulation of undifferentiated senescent ESCs in the endometrial tissue, which neither proliferate nor have the potential to differentiate into decidual cells. Also, it was shown that the presence of undifferentiated senescent ESCs might negatively affect the emergence of mature and senescent decidual cells subpopulations ( Deryabin and Borodkina, 2022 ). Moreover, the persistence of senescent cells causes prolonged secretion of SASP resulting in an uncontrolled pro-inflammatory milieu during the crucial step of decidualization, which can disturb the secretory cascade of decidual cells and the balance between the pro-inflammatory and anti-inflammatory secretory profiles ( Fig. 3b ) ( Deryabin et al. , 2020 ). SASP produced by senescent ESCs might induce paracrine senescence in the neighbouring normal cells, further reducing the plasticity of endometrial tissue, or might directly impair decidualization of the healthy surroundings, multiplying the negative impact of senescent cells ( Griukova et al. , 2019 ; Deryabin and Borodkina, 2022 ). Moreover, age-associated dysregulation of the cellular senescence phenomenon was also observed in a recent study by our group, which demonstrated the significant upregulation of CDKN2A (p16 INK4A ) in endometrial epithelium of women aged >45 years compared to younger women of <30 years (Loid et al. , 2023). Thus, although senescence is one of the vital factors for the initiation of decidualization, age-related cellular changes can impair the senescence-associated network causing an inadequate pro-inflammatory microenvironment that has a detrimental effect on the further pathways involved in decidualization, ECM organization, and hormonal responsiveness of decidual cells, eventually causing failure in embryo implantation ( Deryabin and Borodkina, 2022 ).
The effect of advanced age causing an aberrant pro-inflammatory response is also referred to as ‘inflammaging’ resulting in hampering the endometrial function ( Shirasuna and Iwata, 2017 ; Hirata et al. , 2021 ). Pertaining to endometrial receptivity, inflammaging can be demonstrated in animal model studies. An in vitro bovine endometrial cell model of aged versus young animals revealed an upregulation of pro-inflammatory biomarkers, such as IL1A, interferon regulatory factor 7, and IFNG, involved in inflammatory and interferon signalling pathways contributing to reproductive dysfunction due to advanced age ( Tanikawa et al. , 2017 ). The study also demonstrated deregulation in the cell cycle with activation of G2/M DNA Damage Checkpoint Regulation, thus promoting the age-dependent accumulation of DNA damage and cessation of cell proliferation. The imbalance in the cell cycle was associated with elevated secretion of interferons in endometrial cells, resulting in a pro-inflammatory environment in the endometrium, thus making it less responsive to interferon tau (IFNT) leading to the ‘inflammaging’ phenomenon in the bovine endometrium of advanced age ( Tanikawa et al. , 2017 ). Additionally, a study comparing younger mares aged 5–7 years with older mares aged ≥15 years showed an age-dependent increased endometrial inflammatory cell infiltration, higher levels of fibrotic changes, and less dense endometrial glands, altogether causing uterine dysfunction, a decreased pregnancy rate, and increased incidence of pregnancy loss ( Carnevale and Ginther, 1992 ). Nevertheless, our knowledge of endometrial inflammaging in humans is less clear.
As discussed above, an adequate and controlled pro-inflammatory response elicited by CD4+T cells to release Th1 and Th17 subsets of cytokines is essential to promote embryo implantation and trophoblastic invasion ( Guerin et al. , 2009 ; Wang et al. , 2020a ; Wu et al. , 2022 ). In parallel to this, regulatory T cells (Treg) (CD4+ CD25+) also play a vital role in regulating immune tolerance at the implantation site to avoid rejection of the semi-allogeneic embryo during the implantation process ( Guerin et al. , 2009 ; Murata et al. , 2021 ). Treg cells target the adaptive immune response by inhibiting proliferation and cytokine production in both CD4+ and CD8+ T cells, thereby supressing the functions of B cells, and antigen-presenting cells such as dendritic cells and macrophages ( Guerin et al. , 2009 ). Compared to other immune cell types, the proportion of these cells is lowest during the WOI. At the initiation of decidualization, these cells are accumulated in the endometrium along with the recruitment of other immunological cells and increase during the early pregnancy to mid-gestation to bring about an immunomodulatory reaction with trophoblast cells. Further, the decidual levels of CD4+ CD25+ Treg cells tend to decline as the pregnancy progresses towards delivery ( Guerin et al. , 2009 ; Monin et al. , 2020 ; Murata et al. , 2021 ). Similarly, the cytotoxic activity by CD8+T cells is suppressed maximally during the implantation events to create a tolerogenic environment ( Shen et al. , 2021 ). However, these cells are found to be prominent during the second and third trimesters of pregnancy, to function in the defence mechanisms against pathogens ( Wu et al. , 2022 ).
Although direct evidence of Treg cells or CD8+ T cells affecting the embryo implantation process due to endometrial aging is not available, the decreased populations of CD4+T cells and CD4+Th17 cells, and increased CD8+T cell populations in the endometrium of pre-menopausal women have been reported ( Rodriguez-Garcia et al. , 2014 , 2018 ). The abundance and functionality of CD4+ T cells gradually decrease with age, eventually compromising their functions such as activation, proliferation, cytokine production, and apoptosis signalling. Thus, it leads to defective immunological synapse formation and cytoskeleton signalling ( Garcia and Miller, 2011 ; Lefebvre and Haynes, 2012 ). These changes might have started taking place much earlier, even before the perimenopausal period, progressing further with advancing age; however, this needs to be explored in the future. Moreover, the imbalance in the population of CD4+ T cells, CD4+ T17 cells, and CD8+ T cells in human decidua may potentially impact embryo implantation, resulting in an increased rate of spontaneous abortions ( Murata et al. , 2021 ).
The endometrium has been reported to undergo histological changes in response to an imbalance in ovarian hormones caused by advanced age. The ESCs have a considerably lower proliferation rate and become less responsive to decidualization stimuli as age increases ( Woods et al. , 2017 ). Moreover, the significant characteristic of aged endometrium is the deposition of collagen in the endometrial stroma with associated tissue fibrosis. Various animal models exhibited age-related increases in uterine fibrosis ( Burack et al. , 1941 ; Biggers et al. , 1962 ; Maurer and Foote, 1972 ; Gosden, 1979 ; Craig, 1981 ; Mulholland and Jones, 1993 ).
Although the mechanism of fibrosis in tissues of older mammals remains elusive, collagen deposition in the endometrium has been reported to be induced by E2 ( Mulholland and Jones, 1993 ; Sharma et al. , 2002 ). This was demonstrated in a study where young ovariectomized rats showed accumulation of collagen after administration of E2 treatment; however, it did not cause an increase in the total uterine collagen, suggesting that the collagen was parallelly degraded as it was synthesized in young rats ( Dyer et al. , 1980 ). Similarly, the large bundles of collagen fibrils were present even after the decidualization by aged stromal cells whereas, in young stromal cells, the collagen was observed to have almost disintegrated ( Mulholland and Jones, 1993 ). Thus, collagen deposition in older rats indicates a decline in the potential of collagen degradation as age increases. One of the underlying reasons may be the higher levels of hydroxyproline exhibited by uterine collagen in advanced-age women ( Woessner, 1963 ) and golden hamsters ( Rahima and Soderwall, 1977 ), which affects the degree of crosslinking and thus impairs the degradation potential of collagenases ( Mulholland and Jones, 1993 ). As endometrial aging is associated with inflammation, this can be another important reason for collagen deposition involving various biological functions such as chronic inflammation, oxidative stress, accumulation of senescent cells, caspases, growth factors, etc. ( Wynn, 2008 ). Moreover, the increased level of P4 in rodents at an older age inhibits the action of collagenases in endometrial cells and explant cultures ( Jeffrey et al. , 1971 ; Jeffrey, 1981 ). A micromolar concentration of P4 and glucocorticoids has been shown to impair the synthesis of collagenase in uterine smooth muscle in cell culture ( Jeffrey et al. , 1990 ; Mulholland and Jones, 1993 ). This confirms the notion that the function of collagenases and other proteases decreases with increased age, even in the uterine cells ( Maurer and Foote, 1972 ). The inability of aged endometrium to degrade the collagen also suggests an impairment in the capacity of stromal cells to remodel the ECM organization, which further affects the formation of junctional complexes hampering autocrine and paracrine cell-to-cell signalling events during decidualization ( Mulholland and Jones, 1993 ; Wynn, 2008 ). Thus, the advanced age and increased fibrosis can be associated with a dysregulation in inflammatory pathways causing pregnancy loss ( Hirata et al. , 2021 ). On the contrary, the study by Noci et al. (1995) has demonstrated no significant difference in the histology of endometrium with respect to stromal cells and collagen accumulation between younger women 40 years. However, older women included in this study group ranged between 40 and 46 years, which may explain the insignificant difference in fibrosis among older women. The correlation of age and collagen accumulation cannot be ruled out in women of more advanced age (>45 years) because most of the notable age-related changes have a negative impact on endometrial biology after 45 years of age. To summarize, aging aggravates collagen deposition along with a decrease in collagen degradation via different mechanisms that ultimately affect various functions, such as ECM organization, decidualization, and uterine senescence, all of which play an important role in female fertility.
Furthermore, the alterations in endometrial epithelium related to advanced age have been shown using various animal models and even human endometrium. Regarding the animal model studies, the most predominant feature highlighted in aged mice endometrium was variation in number, shape, and distribution of microvilli on the surface epithelium. In aged endometrium, they were of irregular shape, variable in length with an abnormal distribution ranging from tightly clustered to sparsely distributed, giving the appearance of ‘bald’ endometrial cells ( Mulholland and Jones, 1993 ). The cytoplasm was observed to be devoid of organelles with tufts of fine filaments composed of proteins from collapsed microvilli. Intra-epithelial leukocytes, primarily lymphocytes, were observed to be elevated in old rats compared to younger rats ( Mulholland and Jones, 1993 ).
Moreover, the endometrial laminar and glandular epithelium contain ciliated cells, which are believed to aid in the transportation of glandular secretions. They also help the gamete and embryo to move along the uterine lining. However, their exact role in this context remains unclear ( Newman et al. , 2023 ). The populations of ciliated epithelial cells in the endometrium exhibit significant variation in numbers during the menstrual cycle and they also have distinct transcriptomic profiles as compared to other endometrial cell types ( Wang et al. , 2020b ; Garcia-Alonso et al. , 2021 ; Loid et al. , 2023). It is unclear whether a higher quantity of ciliated epithelial cells creates a favourable environment or, conversely, hinders trophoblast invasion. Also, as multiciliated cells possess sensory functions through hormone and IL receptors on their surface ( Nutu et al. , 2009 ; Shao et al. , 2009 ), compromised cilial development may interfere with embryo-uterine communication.
Several genomic studies using animal models have identified the impact of aging on endometrial receptivity and implantation. The study in the murine model revealed upregulation of the pro-inflammatory cytokine il17rb , and chemokines such as cxcl12 , and cxcl14 in aged versus young wild-type mice ( Kawamura et al. , 2021 ). Additionally, altered expression of genes associated with mitotic division, angiogenesis, cell migration, immune response, and inflammation was observed in aged mice ( Kawamura et al. , 2021 ). Another in vitro transcriptome study in mice endometrium showed delayed decidualization of stromal cells and impairment in the progression of decidual differentiation with significant downregulation of key regulatory genes like Prl8a2 (Dtprp), Bmp2, Hand2, Hoxa10, Nr2f2 (Coup-tf II), Igfbp5, Sfrp5, Ltf, Muc1 and Cdh1 in aged females ( Woods et al. , 2017 ).
Moreover, the recent in-vitro candidate gene study in human primary stromal cells (PSC) reported an age-dependent decrease in the proliferative capacity of stromal cells with a significant decrease in mRNA and protein expression of BMP3 and STAT3 in women aged ≥36 years ( Berdiaki et al. , 2022 ). Furthermore, in vitro induction of decidualization of PSC in aged women showed significant mRNA downregulation of the decidualization markers IGFBP1 and PRL , indicating that the age-related dysfunction in stromal cell proliferation can potentially eventually affect decidualization, endometrial receptivity, endometrial thickness, and embryo implantation ( Berdiaki et al. , 2022 ).
Based on the available literature, there are very limited data on endometrial aging and its effect on receptivity in humans using a genome-wide approach. Intracellular and molecular interactions in mid-secretory endometrium of healthy women and infertile patients have been studied using advanced omics technologies ( Messaoudi et al. , 2019 ; Ruiz-Alonso et al. , 2021 ). These studies have led to the development of molecular diagnostic tools for the assessment of endometrial receptivity and to pinpoint the exact day for embryo transfer in patients suffering from recurrent implantation failure. However, in these studies, the factor of ‘advanced age’ has not been explored; thus, the molecular mechanism of endometrial aging and its impact on receptivity potential has not been well established.
Recently, in silico tools have been used to retrospectively analyse the published gene expression datasets based on the ‘age’ factor varying from 23 to 43 years ( Devesa-Peiro et al. , 2022 ). The study revealed a total of 5778 differentially expressed age-related genes involved in the dysregulation of biological functions, such as inhibition of epithelial cell proliferation, vascular endothelial growth factor signalling, angiogenesis, insulin signalling, and aging hallmark processes, such as cell cycle arrest and telomer protection, among women 35 years or older ( Devesa-Peiro et al. , 2022 ). A recent study by our group demonstrated that, in addition to general cell cycle and immune pathways dysregulated in women over 45 years, a potent senescence marker CDKN2A (also known as p16 INK4A ) is significantly upregulated in the endometrial epithelium of advanced age women. The accumulation of p16-positive cells may lead to specific changes in endometrial epithelial development through interference with extracellular signal-regulated kinase (ERK), Notch and Hedgehog pathways (Loid et al. , 2023).
Additionally, as reported by Devesa-Peiro et al (2022) , the majority of differentially expressed genes were associated with ciliary processes, cilia motility, and ciliogenesis. Similar findings were obtained by Loid et al. (2023) wherein a large number of cilia-associated genes was up-regulated in endometrial samples corresponding to the WOI among advanced age women (>45 years) compared to younger women (<30 years). The study also identified a larger population of ciliated epithelial cells in women of advanced age (Loid et al. , 2023). Likewise, age-related differences have also been reported in a recent study performed on microRNAs. According to this study, the levels of miR-449c.1 and its precursor were downregulated in the mid-secretory endometrium of a 49-year-old woman compared to a 34-year-old woman of reproductive age. The miR-449c.1 belongs to the miR-34/449 family, which is involved in the regulation of cilia formation that is a prerequisite for the establishment of endometrial receptivity ( Naydenov et al. , 2022 ). Endometrial ciliated cells are transcriptionally distinct epithelial cells with varying numbers of cell populations across the menstrual cycle ( Wang et al. , 2020b ; Garcia-Alonso et al. , 2021 ), and therefore, their functions and optimal number need to be investigated further with respect to endometrial receptivity and chronological aging.
Embryo implantation is a result of the successful dialogue between receptive endometrium and the competent embryo. In other words, endometrial receptivity is also modulated by the embryo itself. The interactions between endometrium and embryo have been explained by the concept of exosome biogenesis ( Ntostis et al. , 2021 ). Extracellular exosomes secreted by the receptive endometrium, as well as by the competent embryo, encapsulate essential signals for the implantation process. At a younger age and under a favourable microenvironment created by steroid hormones, anti-apoptosis, and energy generation pathways, these exosomes exchange signals, which induce cell adhesion and cell migration, to achieve synchronized embryo-endometrial co-ordination. Trophectoderm derived from the embryos of younger women showed upregulation of genes associated with extracellular exosome biogenesis, reduction of oxidative stress, mitochondrial ATP synthesis, and cholesterol biosynthesis compared to women of advanced age. Thus, in the implantation process, exosome-related genes derived from the trophectoderm are altered in women of advanced age compared to younger women, leading to unsuccessful embryo-endometrial competency ( Ntostis et al. , 2021 ). Moreover, maternal age-related asynchrony between embryo and endometrium has also been demonstrated in the stimulated IVF cycles wherein the 50% chance of asynchrony in women younger than 35 years of age is elevated to 65% in women of advanced age ( Shapiro et al. , 2016 ). Still, although recent studies have supported the hypothesis that age affects endometrial function, the exact mechanism(s) and integrated associated factors involved needs to be further elucidated to generate substantial evidence.