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SheMed raises €43m to scale UK operations

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London-based women’s health platform SheMed has raised €43m to expand its UK operations and further develop its personalised healthcare platform.

The company, founded by sisters Olivia and Chloe Ferro in April 2024, will use the investment to scale its medical and technology teams, strengthen clinical infrastructure and enhance its data-driven systems.

SheMed offers weight management programmes using GLP-1 drugs — treatments that mimic a natural hormone regulating blood sugar and appetite — alongside wellness tracking and 24/7 support through its digital platform.

 Olivia Ferro, co-founder and chief executive of SheMed, said: “For more than a decade, I searched for answers to an undiagnosed health issu.

“As a GLP-1 patient myself, I know how transformative the right diagnosis and treatment can be.

“We built SheMed to give women the personalised support I struggled to find: care that listens, understands and empowers.”

The funding comes amid a broader wave of investment in UK and European health technology, particularly in preventative care and women’s health.

Other UK-based companies in similar areas have also raised significant sums this year, including Numan, which secured €51.6m to expand its digital healthcare platform into female health, and Hormona, which raised €7.8m for its AI-driven hormone health tracking solution.

Related UK ventures such as Perci Health and CoMind have also attracted new funding for personalised, data-led healthcare models.

According to analysis by EU-Startups, UK start-ups have raised about €14.7bn so far in 2025, signalling strong investor confidence in the country’s innovation sector.

The new investment will also fund SheMed’s research and patient-experience initiatives, aimed at improving access to personalised care for women across the UK.

Later this month, SheMed plans to publish results from what it describes as the first female-focused GLP-1 clinical study.

The findings are expected to reveal how GLP-1 medications affect women’s hormonal and metabolic responses, helping to refine future treatment approaches.

Mental health

Poor sleep linked to Alzheimer’s risk in older women – study

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Poor sleep may signal higher Alzheimer’s risk in older women with greater genetic risk, a study suggests.

Older women who reported poorer sleep also showed greater memory difficulties and more Alzheimer’s-related brain changes, the study found.

That pattern appeared only in women with higher genetic risk, suggesting sleep complaints may be a stronger warning sign for some women than for others.

Researchers examined 69 women aged 65 years and older taking part in the Women Inflammation Tau Study, an ongoing project focused on ageing and Alzheimer’s disease risk.

Participants completed questionnaires about their sleep quality, underwent memory testing and received brain scans measuring tau. Tau is a protein that accumulates abnormally in Alzheimer’s disease.

The study found that poorer self-reported sleep was associated with worse visual memory performance and greater tau accumulation in brain regions affected early in Alzheimer’s disease, but only among women with higher genetic risk.

Women with lower genetic risk did not show the same relationship between sleep complaints, memory and tau build-up. The finding was specific to visual memory and was not observed for verbal memory.

Researchers said the results add to growing evidence that sleep disturbances and Alzheimer’s disease may reinforce one another over time.

Previous studies have suggested that disrupted sleep can contribute to the build-up of abnormal tau proteins, while Alzheimer’s-related brain changes may also interfere with healthy sleep patterns.

Because women account for nearly two thirds of Alzheimer’s cases and frequently report poorer sleep quality than men, the researchers said sleep may represent an important and potentially modifiable risk factor in older women.

The authors noted that self-reported sleep assessments are inexpensive and easy to administer, raising the possibility that sleep complaints could help identify people who may benefit from closer monitoring or early intervention.

They also suggested that improving sleep could become a target for future Alzheimer’s prevention strategies, particularly for women at elevated genetic risk.

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Fertility

AI could transform ovarian care through personalisation, study finds

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AI could transform ovarian care by personalising cancer and fertility treatment, but more clinical validation is needed before routine use.

A systematic review and meta-analysis found AI models showed high diagnostic accuracy for ovarian cancer when combining data such as ultrasound scans and blood test results.

Across 81 studies, AI models correctly identified ovarian cancer in around nine out of 10 cases, with pooled rates of 89 to 94 per cent.

They were also highly accurate at ruling out ovarian cancer when it was not present, with specificity of 85 to 91 per cent.

The analysis also found that explainable AI tools could predict complete surgical cytoreduction in advanced ovarian cancer.

Complete surgical cytoreduction means removing all visible cancer during surgery, which can be an important goal in treatment planning.

The tools achieved a pooled AUC of 0.87. AUC is a measure of how well a model distinguishes between different outcomes, with higher scores showing stronger performance.

In reproductive medicine, AI algorithms helped physicians optimise ovarian stimulation protocols and predict follicular growth during IVF.

Ovarian stimulation is the use of hormones to encourage the ovaries to produce eggs, while follicles are the small sacs in the ovaries where eggs develop.

The review found AI could reliably model ovarian response in IVF with a pooled AUC of 0.81.

However, researchers said challenges remain in translating promising research findings into routine clinical practice.

They identified substantial variation across studies, driven by retrospective study designs, variable AI systems and a lack of standardised validation.

Only 22 per cent of analysed studies reported prospective, multicentre external validation, where models are tested forward in time across multiple healthcare settings.

The authors called for rigorous validation to help close the gap between research and routine clinical practice, alongside standardised methodological and reporting frameworks, smooth integration with clinical workflow and robust governance to support responsible and ethical AI use.

They concluded: “Artificial intelligence is a transformative force in the management of ovarian conditions.

“In gynaecologic oncology, AI enhances every phase of care, from early detection and accurate diagnosis to prognostic stratification and surgical planning.”

In reproductive medicine, AI personalises ovarian stimulation and refines the diagnosis of heterogenous endocrine disorders such as PCOS.

PCOS, or polycystic ovary syndrome, is a hormonal condition that can affect periods, skin, weight and fertility.

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Cancer

Three cancer innovators shortlisted for Femtech World Award

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Femtech World is delighted to reveal the shortlist for this year’s Women’s Cancer Innovation award.

The award, sponsored by Endomag, will honour a groundbreaking innovation dedicated to the prevention, early detection treatment or ongoing care of cancers that uniquely or disproportionately affect women.

Endomag is a medical technology company devoted to improving the global standard of cancer care.

Its Sentimag system, Magseed marker and Magtrace lymphatic tracer are used by thousands of the world’s leading physicians and cancer centres.

After careful review of this year’s submissions, we are delighted to announce the three shortlisted entries for the Women’s Cancer Innovation Award 2026.

Auria is tackling one of the most stubborn problems in breast cancer screening: the 66 per cent of women who simply don’t participate.

Rather than improving existing imaging pathways, Auria is creating an entirely new access layer: a non-invasive, at-home test that detects protein biomarkers for breast cancer in tears.

Auria’s test, a CLIA-certified Lab Developed Test, has been validated across more than 2,000 patients in multiple clinical studies with collaborators including MD Anderson Cancer Center and Stanford University.

It reports a sensitivity of 93 per cent and a negative predictive value of 98 per cent.

Founded on six years of combined research at the University of Barcelona and UC Irvine, The Blue Box has developed a non-invasive, urine-based test that detects breast cancer by analysing volatile organic compound (VOC) signatures – no radiation, no compression, no imaging facility required.

The test achieves a sensitivity of 88.42 per cent, outperforming mammography by 15 per cent overall, and by 30 per cent specifically in women with dense breasts. 

The technology could function as a first-line screening tool in primary care settings, as a complement to mammography for high-density patients, or as an accessible alternative in healthcare systems where imaging infrastructure is limited.

Celbrea is a disposable and affordable thermal screening device that empowers women of all ages to stay on top of monitoring their breast health.

The device aims to add to doctors’ existing standard evaluation protocols with a quick, painless examination. Celbrea does not replace a mammogram but simply provides an additional way to screen for breast disease, including breast cancer.

The device consisting of two disposable pads with photochromic sensors. The pads are self-applied to each breast for 15 minutes.

1188 nano-sensors are embedded within a biocompatible multilayer pad, accurately measuring any temperature differences on the surface of the breast using liquid crystal thermographic technology.

What happens next

The shortlisted entries will now be judge by an Endomag representative who will reveal the winner at a virtual awards event on June 19.

Winners will receive a trophy and will be interviewed by a Femtech World journalist.

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