News
Menopause Society receives US$5m for digital training

The Menopause Society has secured US$5m from the Steven & Alexandra Cohen Foundation to develop digital training for healthcare professionals.
The grant will fund the digital-innovation phase of the NextGen Now initiative, which aims to build a digital ecosystem using advanced technologies to improve education on women’s health in midlife.
Launched in June, the initiative plans to reach 25,000 healthcare professionals in three years through comprehensive training programmes.
The digital plan includes an integrated learning platform, virtual and augmented reality modules – immersive tools that simulate real clinical scenarios – and a mobile app.
Dr Stephanie Faubion, medical director of The Menopause Society, said: “We are deeply grateful and excited for the support of Alex Cohen and the Steven & Alexandra Cohen Foundation in our NextGen Now initiative.
“This commitment empowers us to continue advancing our mission and strategy while embracing new opportunities to expand our reach and influence.
“We look forward to building on this momentum and achieving even greater results together.”
The organisation notes that menopause – when periods stop and hormones change – affects millions of women annually but remains one of the most overlooked areas in medicine, with limited specialised training in current medical curricula.
The society offers a certification programme designed to enhance clinicians’ training and differentiate practitioners with specialised knowledge.
However, Dr Faubion says this alone does not compensate for gaps in medical education.
Dr Faubion said: “We have our certification programme that is designed to enhance clinicians’ training and differentiate them from other practitioners, but that by itself does not make up for the lack of specialised training provided in current medical curricula.
“NextGen Now will take participants to an entirely new level of real-world experience, supplemented with the most current research and best practices.”
The NextGen Now initiative is planned as a multiphase project spanning several years.
The organisation says additional funding is still needed, particularly for research and data collection components.
The Menopause Society has served as a non-profit, multidisciplinary organisation focused on women’s health during midlife transitions since 1989.
It provides resources for healthcare professionals, researchers, media and the public.
Cancer
Federal gov should fund drug to treat breast cancer and endometriosis, Aus committee says

Australia’s drug advisory committee has recommended wider funding of triptorelin for women with breast cancer or endometriosis.
The recommendation comes after AstraZeneca announced plans to remove Zoladex from the market, risking leaving more than 7,500 women with breast cancer without an alternative treatment.
Both medicines block the release of oestrogen and testosterone and can be used as part of treatment, or for fertility preservation, in some forms of cancer.
The Pharmaceutical Benefits Advisory Committee met urgently in July and recommended making triptorelin unrestricted under the Pharmaceutical Benefits Scheme (PBS), which would mean it was funded for all uses.
The drug has been listed on the PBS for prostate cancer since 2006.
Triptorelin and Zoladex can also be used to treat endometriosis and to block puberty for either precocious puberty or gender-affirming care.
Vicki Durston, director of policy and advocacy at Breast Cancer Network Australia, described the recommendation as “a significant step forward” and said access to the medicine could mean the difference between life and death for some patients.
She said some women had already chosen to have their ovaries removed because of uncertainty over Zoladex supplies.
Marilla Druitt, Victorian state chair of the Royal Australian and New Zealand College of Obstetricians and Gynaecologists, said it remained unclear whether triptorelin would work exactly the same way as Zoladex, but the recommendation was likely to be positive for patients with endometriosis and pelvic pain.
She said: “I’m glad we’ve got an alternative.”
“That’s fantastic, and it remains to be seen whether or not it will be as good, but pain is so complex, pain is a really hard thing to study because it’s got so many contributors.”
Druitt said further research would be needed after the medicine was introduced.
If accepted by the federal government, the recommendation would also allow PBS funding of triptorelin for puberty suppression in precocious puberty and gender-affirming care.
This would make gender-affirming care federally funded through the PBS for the first time and would remove a financial barrier for transgender children in Queensland and the Northern Territory.
Stuart Aitken, medical director of Gender Health Australia, said the recommendation had sparked “absolute joy” among his patients.
He said: “It takes away a huge barrier to accessing evidence-based care.”
“It means that the ban has a very limited effect.”
Insight
Benchmarking 2027: Shifting priorities in US health infrastructure

By Women’s HealthX
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Some of the questions we are asking:
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Opinion
Why health AI needs to read between the lines

Sahar Abid is a Science Associate at Ema EQ, where she works on cultural sensitivity and bias in AI.
A woman asks an AI health assistant about postpartum depression.
She mentions that her in-laws are telling her to “push through” and skip medical help, even as her symptoms get harder to manage. She never says where she is from or names her background.
The assistant describes the condition and gives her a hotline number. It sounds correct, but it misses what she needs.
That gap is more common than the industry admits, and it points to a blind spot in how we test health AI for bias.
Most bias testing looks at what people explicitly say.
The typical way to check an AI for bias is to label a prompt with someone’s demographic details and see if the answer changes. That catches some problems but misses a bigger one.
Most people do not lead with their identity. They lead with their situation. The woman above told the assistant everything it needed to help her, just not in the form of a label.
Her real question was not only “what is postpartum depression?” It was “how do I get care when the people around me don’t want me to?
When family members hold sway over health decisions, and in many communities they do, advice that asks someone to overrule their family is not something they can act on.
The AI didn’t say anything factually wrong. It answered a different question than the one she was living.
We call this culturally implicit bias, meaning the AI misses the cultural context a situation implies rather than the context a person spells out.
When systems are trained to notice only the explicit cues, they fall back on a default answer built for the majority. For everyone else, the response can feel generic, off-target, or discouraging enough that they stop looking for help.
In health, that is not small. The people most likely to be missed are often the ones the system already underserves.
What we set out to test.
At Ema, we wanted to know how well AI picks up on cultural context that is implied but never stated. So we built our own way to test for it, across a range of communities and real situations like postpartum depression and fertility, using questions that carried cultural meaning without announcing it.
The patterns were consistent. Models often missed the meaning underneath the question. They dropped the specific details a person did share and smoothed them into something generic.
And even when they pointed toward real care, they tended to offer one option instead of choices that might actually fit a person’s life. Any one of those can be the difference between someone following the advice and walking away from care.
Why this matters for anyone building health AI.
Getting this right is the right thing to do, and it also works better.
When an answer reflects a person’s real context, people trust and act on the recommendations more, so they get the help and support they need.
Testing for it is harder than the shortcut most teams use. Swapping a name or a demographic label in and out is easy. Checking whether a model actually understands the human context around a question takes more care.
The shortcut teaches models to perform cultural competence instead of practicing it. No matter how much or how little someone chooses to share, they deserve an answer that is warm, complete, and usable.
A better question.
The bar for equitable health AI should be “does it serve someone who never told you who they are?” It is the harder test, but it determines whether real people get help.
The work of getting there is far from finished, and it is exactly what we are building toward at Ema.
Sources: Naidoo, V., & Chadha, K. K. (2025), Culturally responsive AI chatbots: from framework to field evidence, Computers in Human Behavior: Artificial Humans. Souligne, N., & Subbian, V. (2026), FairLogue: A toolkit for intersectional fairness analysis in clinical machine learning models.
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