Tuesday, June 02, 2026

 

Why researcher independence doesn’t start or end with a PhD



Researchers map careers as rivers to show how independence evolves over time



Hiroshima University

Yusuke's 'River of experience' 

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A new study shows that researcher independence is not a simple PhD milestone but rather an ongoing, uneven process. Lead author Associate Professor Yusuke Sakurai illustrates his academic journey as a “river of experience.”

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Credit: Illustration by Yusuke Sakurai, Hiroshima University





So you’ve finished your PhD — now what?

A PhD is often treated as the point where scholars become “independent.” Yet, a new study by Hiroshima University shows that achieving independence is far less simple and tidy, unfolding instead as a long, uneven, river-like journey shaped by relationships, risks and resilience.

The study was published in Innovations in Education and Teaching International on May 18, 2026.

“Existing research often views researcher independence as a milestone or output of doctoral training, but this overlooks the complex developmental process that continues well beyond the PhD and arises from academic relationships and structures,” said Yusuke Sakurai, associate professor from the Center for Academic Practice and Resources and the Research Institute for Higher Education at Hiroshima University and lead author of the study.

Using an innovative approach combining collaborative autoethnography with visually guided interviews, known as the “river of experience,” the team drew on their own experience as six researchers in educational study across doctoral, early-career and mid-career stages, offering a rare, longitudinal perspective on how independence is actually experienced.

“Each participating researcher literally draws their career as a river, with bends, rapids, confluences, and calm stretches representing key moments in their development,” Sakurai said.

The findings point to three core dimensions of researcher independence. First, it is a bumpy developmental process, marked by uncertainty, setbacks and gradual growth rather than a clear transition point. Second, it is an agentive, self-directed process in which researchers build skills, advance expertise, and navigate their careers through varied academic engagements. Third, it is created and affirmed through ongoing interactions between internal validation and external academic recognition.

“Rather than a simple transition from ‘dependent doctoral student’ to ‘independent academic,’ independence appears as a non‐linear, ‘bumpy’ process shaped by critical experiences such as conferences, job searches, rejections, supervision dynamics, and opportunities to review and mentor others,” Sakurai said.

Importantly, the findings show that independence is fashioned as much by external conditions as by internal growth. Relationships with supervisors and peers, institutional expectations, and structural challenges — particularly precarious employment — can all enable or constrain a researcher’s ability to act independently. Even experienced researchers may struggle to feel truly independent when they lack the freedom to choose their projects or roles.

By moving beyond the narrow framing of independence as a one-time achievement, the study offers a more realistic understanding of it as a dynamic, lifelong process formed by both individuals and the systems they work within.

Looking ahead, the team aims to inform more sustainable and intentional approaches to researcher training, particularly as the global research community continues to grow.

“We hope future research will examine other disciplines and settings, using longitudinal designs to track how researchers negotiate independence across different stages and contexts,” Sakurai said.

The research team also includes Jin Yu of the University of Glasgow, UK; Dangeni of Anglia Ruskin University, UK; Anding Shi and Kelsey Inouye of the University of Oxford, UK; and Wenjuan Cheng of Hiroshima University, Japan.

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About Hiroshima University
Since its foundation in 1949, Hiroshima University has striven to become one of the most prominent and comprehensive universities in Japan for the promotion and development of scholarship and education. Consisting of 12 schools for undergraduate level and 5 graduate schools, ranging from natural sciences to humanities and social sciences, the university has grown into one of the most distinguished comprehensive research universities in Japan. English website: https://www.hiroshima-u.ac.jp/en

 

Tiny genome elements tune carrot genes





Nanjing Agricultural University The Academy of Science

Expression and characteristics of the carrot LHY/RVE family. 

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Expression and characteristics of the carrot LHY/RVE family. 

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Credit: Horticulture Research





Mobile DNA, once treated largely as genomic clutter, may help plants build new ways to respond to environmental stress. A new carrot genome study shows that miniature inverted-repeat transposable elements (MITEs) can carry binding sites for LATE ELONGATED HYPOCOTYL/REVEILLE (LHY/RVE) transcription factors (TFs), key regulators linked to the plant circadian clock and stress responses. One carrot MITE family, DcTourist_15, appears especially important in moving these regulatory sites across the genome. By inserting near genes, these elements may alter gene activity under normal and heat-stress conditions, offering a new view of how crop genomes generate regulatory diversity without changing protein-coding sequences.

Plant genomes are dynamic landscapes shaped by transposable elements (TEs), mobile DNA sequences that can move or multiply within chromosomes. MITEs are particularly intriguing because they are small, abundant, and often located close to genes, where they can influence expression. Previous studies have suggested that MITEs may contribute cis-regulatory elements, but how this process works and whether it affects stress-related regulation remain insufficiently understood. Carrot provides a useful system because its genome contains many diverse and polymorphic MITEs. Due to these challenges, it is necessary to conduct in-depth research on how MITEs redistribute transcription factor binding sites and reshape gene-expression networks in plants.

Researchers from the Department of Plant Biology and Biotechnology, University of Agriculture in Krakow, Poland, and the Department of Biological, Ecological, and Earth Sciences, University of South Carolina Aiken, United States, reported (DOI: 10.1093/hr/uhaf360) these findings in Horticulture Research on January 2, 2026. The open-access article examines how carrot miniature inverted-repeat transposable elements (MITEs) influence genes controlled by LATE ELONGATED HYPOCOTYL/REVEILLE (LHY/RVE) transcription factors and identifies DcTourist_15 as a likely driver of MITE-mediated regulatory rewiring in the carrot genome.

The study combined genome-wide computational screening, DNA affinity purification sequencing (DAP-seq), stress-response transcriptome analysis, comparative analysis with rice, and yeast one-hybrid validation. The researchers first searched the carrot genome for short DNA motifs enriched within MITEs and found many sequences resembling LHY/RVE binding sites. DAP-seq then identified 11,779 DcLHY binding sites, including 2,346 located in promoters of protein-coding genes. Among these sites, 1,429 overlapped with carrot MITEs, a much higher frequency than expected from random MITE-like genomic segments. The strongest signal came from DcTourist_15: 592 copies overlapped with DcLHY DAP-seq peaks, compared with only five copies from the related DcTourist_13.2 family. Yeast one-hybrid assays further supported the ability of DcLHY to bind the DcTourist_15 sequence. The team also found that carrot LHY/RVE genes responded mainly to cold and heat stress, and that DcTourist_15 insertion polymorphisms were associated with altered expression of nearby genes under both control and heat-stress conditions.

The authors said the findings show how mobile DNA can act as a source of regulatory innovation rather than simply as repetitive sequence. They said DcTourist_15 appears to carry regulatory signals into new genomic neighborhoods, sometimes placing nearby genes under the influence of circadian-clock and stress-response factors. Not every insertion is expected to be useful, they said, and many may be neutral or removed by selection. Still, the work illustrates how genome mobility can create expression differences that plants may later retain, refine, or discard as they adapt.

The findings may help researchers better understand how crops generate natural variation in stress responses. Because DcTourist_15 insertions can correspond with changes in nearby gene expression, such elements could become useful markers for studying carrot adaptation, heat response, and metabolic regulation. The study also found enrichment of LHY binding sites in rice MITEs, suggesting that MITE-driven regulatory rewiring may extend beyond carrot. Future research could test whether specific MITE–gene associations improve plant performance under field stresses such as heat, cold, or drought. More broadly, the work highlights noncoding mobile DNA as a potentially important resource for crop genetics and breeding.

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References

DOI

10.1093/hr/uhaf360

Original Source URL

https://doi.org/10.1093/hr/uhaf360

Funding information

The research was primarily financed by Polish National Science Center (NCN) project Opus17 no. 2019/33/B/NZ9/00757. The research performed at the University of South Carolina Aiken was supported by the National Institute of General Medical Sciences of the National Institutes of Health under Award Number P20GM103499.

About Horticulture Research

Horticulture Research is an open access journal of Nanjing Agricultural University and ranked number one in the Horticulture category of the Journal Citation Reports ™ from Clarivate, 2023. The journal is committed to publishing original research articles, reviews, perspectives, comments, correspondence articles and letters to the editor related to all major horticultural plants and disciplines, including biotechnology, breeding, cellular and molecular biology, evolution, genetics, inter-species interactions, physiology, and the origination and domestication of crops.


Carbon dioxide removal will need to scale faster than solar to meet climate targets




University of Oxford






Oxford, 02 June 2026: The 3rd Edition of the State of Carbon Dioxide Removal report finds that national pledges fall short of pathways limiting warming to 1.5°C this century by more than 5 billion tonnes of CO₂ per year by 2050. Closing this gap would require carbon dioxide removal (CDR) to grow at rates comparable to, or faster than, the most rapid clean energy transitions in history, including solar power and electric vehicles.

Cutting emissions remains the first and most important priority for tackling climate change. Most progress in limiting warming will come from reducing emissions, while CDR will help address emissions that are hardest to eliminate. However, for as long as any emissions continue, CDR will be needed to halt the rise in global temperature. Delaying emissions cuts by a decade, for example, would warm the planet by about 0.15°C and increase the need for CDR later this century.

Today, the world removes about 2.2 billion tonnes of CO₂ from the atmosphere each year, almost all of it through land-based actions such as restoring forests. Novel technologies that use machines or minerals to lock away carbon only account for around 0.1% of total removals – but have been growing at 40% per year. At the same time, activity behind the scenes is also growing; research funding, trial projects and startups focused on CDR have all increased, and investment in CDR now makes up around 3% of overall investment in climate tech, rebounding last year even as wider climate investment has slowed.

Despite this momentum, the authors warn that today’s CDR system is fragile. In recent years, only about 20% of planned novel CDR capacity has actually been delivered, highlighting how challenging it is to bring new projects forward into operation. Dr Morgan Edwards, Lead Author and Assistant Professor at University of Wisconsin-Madison said, “Growing investment in CDR will depend on expectations of future demand, but those expectations are fragile. Activity is highly concentrated in a small number of countries and approaches. That creates real vulnerability – local changes in policy or market signals risk slowing progress globally”.

The report also makes clear that there is no single solution. It looks at a wide range of ways to remove carbon dioxide from the atmosphere, with estimated costs ranging from under $10 to over $1,000 per tonne of CO₂, with conservative estimates for potentials for most methods around 1 billion tonnes a year. However, uncertainties remain about how much each option can really deliver sustainably and affordably, and how people will react to projects in their regions. Most people know little about CDR, and whether they accept it will depend on its impacts on who shares in the benefits.

The authors identify the time until 2030 as a decisive window. Edwards added, “Novel CDR approaches are growing quickly but need to grow even faster significantly, while proving that they can reliably lock away carbon and provide clear benefits beyond climate, healthier soils or economic opportunities.”

Steve Smith, Smith School of Enterprise and the Environment, University of Oxford, said “The rapid growth of CDR technologies has been notable progress. Many projects are marketing wider environmental benefits and co-products in addition to climate benefits. This partly reflects opportunities for multiple wins, and partly reflects the scarce financial rewards available for the public good of cleaning up CO2 from the air.”

Without faster cuts in emissions and stronger, more predictable demand for high-quality CDR, the gap between where we are and where we need to be will keep widening, making climate targets much harder and more expensive to achieve.

About The State of Carbon Dioxide Removal

The State of Carbon Dioxide Removal (SoCDR) is the first independent global assessment of CDR, convened by experts at the University of Oxford, German Institute for International and Security Affairs, Potsdam Institute for Climate Impact Research, University of Wisconsin—Madison, and University of Maryland. It tracks progress, identifies gaps, and provides clear insights to inform action through evidence. Learn more at www.stateofcdr.org.

Note to Editors: Authors are available for interview, please contact: Neha Soni-Pinto, Communications Lead, neha.soni-pinto@smithschool.ox.ac.uk | +44 7867236630

Defining CDR 

CDR involves capturing CO2 from the atmosphere and storing it durably on land, in the ocean, in geological formations or in products. Examples include reforestation, biochar, bioenergy with carbon capture and storage (BECCS) and direct air carbon capture and storage (DACCS). Some means of storage are longer-lasting and less vulnerable to reversal than others.  

CDR vs CCS 

CDR is not the same thing as carbon capture and storage (CCS). To count as CDR, a method must capture CO2 from the atmosphere. While some CDR methods such as BECCS and DACCS will use the same CO2 transport and storage infrastructure as CCS, CCS usually refers to a set of industrial methods for the capture of CO2 from fossil sources. 

Supplementary comments from authors

Oliver Geden, German Institute for International and Security Affairs (SWP) said “Stabilising global temperature requires bringing CO2 emissions down to net zero, and this is impossible without CDR. Furthermore, once warming exceeds 1.5°C, bringing the global temperature back down will mean removing more carbon dioxide from the atmosphere than we emit, by achieving net-negative emissions to rebalance the global carbon budget.

William Lamb, Potsdam Institute for Climate Impact Research said “Countries have pledged around 2.7 billion tonnes of carbon removal by 2035 and about 3.6 billion by 2050, but climate pathways require much more, especially in the long term. This leaves a gap that grows significantly over time. Most pledges rely on forests and land, with newer technologies playing only a small role. Delays in cutting emissions would make this gap even larger.”

Greg Nemet, La Follette School of Public Affairs at UW Madison, said, “Around $5.7 billion has been committed globally to CDR research and early-stage projects since 2019, and over 40 pilot projects are now underway. But progress on the ground is slower than expected, with only about 20% of planned capacity delivered so far. Recent policy shifts, including the cancellation of more than $3 billion in US projects, show how quickly momentum can stall without stable, long-term support.”

Jan Minx, Potsdam Institute for Climate Impact Research said, “Research in CDR is growing quickly, with publications increasing by around 15% a year in recent years and funding rising fast. But progress is uneven – high-value patenting has declined, especially for technologies like bioenergy with carbon capture storage (BECCS). To meet climate goals, we need stronger and more consistent support for innovation across a wide range of approaches.”

Matthew J. Gidden, Center for Global Sustainability, University of Maryland, said “Every ambitious climate pathway we assessed combines massive emissions cuts with CDR to limit warming well below 2°C. While reducing emissions solves most of the problem, CDR is needed at gigatonne scale to get us to net zero. That means novel and conventional CDR must scale by multiple gigatonnes globally over decades, at rates matching the fastest energy transitions like solar. But real-world delays, uneven global action or climate surprises could demand even more, proactive deployment now is our best hedge against those risks.”

Candelaria Bergero, La Follette School of Public Affairs at UW Madison, said “Every credible climate pathway we looked at includes CDR alongside deep emissions cuts, reaching billions of tonnes per year by mid-century. But these pathways assume immediate policy action – in the real world, delays would mean we need even more CDR, not less.”

Carley Reynolds, Potsdam Institute for Climate Impact Research, said “What we see is a clear and growing mismatch between what countries are aiming for and what’s needed to meet climate goals. Today the gap is relatively small, but by mid-century it becomes very large. That gap widens further if action is delayed, meaning we would have to rely much more heavily on large-scale CDR later on.”

Franklyn Kanyako, La Follette School of Public Affairs at UW Madison, said “Dozens of pilot projects are now up and running, but real-world delivery is still lagging behind expectations. So far, only about 20% of planned capacity has been built, showing how challenging it is to move from announcements to actual projects on the ground.”

Friedemann Gruner, Potsdam Institute for Climate Impact Research, said “CDR methods vary widely in estimated potential and cost, from under 1 billion tonnes a year and below $100 per tonne for some conventional methods, up to tens of billion tonnes and potentially over $1,000 per tonne for some more novel methods. Cheaper methods like reforestation are often associated with cobenefits for nature and food security, but scaling any approach requires managing tradeoffs around land, water and energy use. Across methods, uncertainties about both costs and potentials are high, reflecting the still evolving scientific understanding of the scalability of different methods. We urgently need more research to narrow these uncertainties and guide smart investment.”

Kirsty Harrington, Smith School of Enterprise and the Environment, University of Oxford, said, “Today, around 2.2 billion tonnes of CO are removed each year, almost all of it through forests and land use. Newer novel CDR technologies are growing quickly, but they are still tiny in comparison, about a thousand times smaller. As these approaches scale up, it’s important we carefully measure how much carbon is actually removed to ensure real climate benefits.”

Leona Tenkhoff, German Institute for International and Security Affairs (SWP) said, “More than 100 countries have set net-zero targets, but very few have clear plans for how CDR will be realised and scaled. Most policies focus on funding projects rather than creating real demand, which makes progress uncertain. How CDR grows next will depend on more stable and predictable policy support.”

Sabine Fuss, Potsdam Institute for Climate Impact Research said: "We cannot rely on a single CDR method to close the gap. Conservative estimates for removal potentials from different methods are around 1 billion tons of CO per year. A diverse portfolio of CDR methods, with different approaches tailored for different contexts and geographies, would help to preserve flexibility, reduce costs, and maximise sustainability benefits."

Supplementary comments from other voices in CDR

Aaran Patel, Advisory Board, The State of CDR said, “Cutting across science, policy, perception and practice, the State of CDR is the authoritative voice on the nascent but vital removals sector. Amongst other themes, the third edition brings a greater focus to the potential agronomic co-benefits of removal pathways like biochar and enhanced rock weathering. From boosting soil health and yields to increasing farmer incomes, if done right, these removals could also increase resilience and open new channels of finance for countries like India in the Global South.”

 

Environmental engineers reshape understanding of airborne pollution particles




Virginia Tech

Peter Vikesland and Yangyang Liu 

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(From left) Peter Vikesland and Yangyang Liu often work with a confocal Raman microscopy system used to study the chemistry and properties of tiny aerosol droplets in the lab.

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Credit: Photo by Courtney Sakry for Virginia Tech.





From sizzling bacon in the kitchen to wildfire smoke in the sky, cooking and pollution release microscopic particles that affect humans' health, the air they breathe, and even weather and climate.

New research from Virginia Tech is poised to upend how scientists think about the structure of these tiny airborne droplets and what that means for predictions around air quality, pollution spread, and climate models.

Yangyang Liu, a research scientist in civil and environmental engineering, and Peter Vikesland, the Pryor Professor of Engineering, found in lab studies that these particles have an outer “shell.” Inside the droplet, the chemistry may be acidic, but the outer surface can become strongly alkaline because fatty compounds, similar to oils released during cooking, form a coating around the particle. That coating creates tiny electric fields that change the chemistry at the surface and may play a major role in how pollution particles change after they’re released into the air.

“Most people imagine a droplet as being the same all the way through, like a drop of water,” Liu said. “But we discovered that these airborne particles behave more like an M&M candy. The inside and the outside have a very different chemistry.”

Their findings were recently published in Proceedings of the National Academy of Sciences

Why does it matter?

Most important pollution reactions happen on the outside of these particles, where they touch the air. If the surface behaves differently than the inside, the particle can change much faster than scientists have historically expected, according to the research.

For people, this affects several important things:

  • What humans breathe: Cooking smoke, wildfire smoke, and urban pollution may transform in the air differently than expected, which can influence air quality and health.
  • How pollution travels: These particles can change chemically as they move through the atmosphere, affecting how long pollution stays in the air and how far it spreads.
  • How weather is predicted: Tiny airborne particles help form clouds and influence how sunlight moves through the atmosphere, meaning the new research could affect weather and climate models.
  • How pollution is predicted: Scientists use computer models to predict pollution and its health impacts. If particle surfaces behave differently from their interiors, those models may need updating to better reflect reality.

Recreating atmospheric chemistry in a lab

Vikesland and Liu relied on controlled laboratory simulations rather than collecting air samples directly from the field. By generating tiny aerosol droplets coated with fatty acids, they were able to study the chemistry happening at the droplet surface. These controlled simulations allowed them to measure extremely small electric fields and observe complex reactions, including the formation of a highly alkaline outer shell around the droplets.

These findings challenge the long-held view of airborne particles as chemically uniform droplets and point to a more dynamic picture of how they evolve in the atmosphere. By revealing how much activity is on particle surface, the research provides new insight into how pollution changes once released into the air and underscores the need to better account for these processes in future air quality and climate models.

 

Substantial variations in referrals for advanced heart failure therapies across UK and Ireland



No obvious link to geographical location or social deprivation to explain variations; Women less likely to be referred for life prolonging therapies than men




BMJ Group





Substantial variations in referrals for advanced heart failure therapies are apparent across the UK and Ireland, with no obvious link to geographical location or social deprivation to explain the findings, reveals the first national audit of its kind, published online in the open access journal Open Heart.

 

Women are less likely to be referred for life prolonging therapies, such as a heart transplant or an implantable mechanical pump (left ventricular assist device or LVAD for short). They represent just 1 in 3 referrals, the audit shows.

 

Roughly one million people live with heart failure in the UK, with around 200,000 new cases diagnosed every year. Around 50,000 patients with advanced heart failure in the UK are under 65, making them potentially suitable for advanced therapies, note the researchers.

 

Yet only just over 300 surgical interventions for the condition at an advanced stage are carried out each year, they add.

 

Previous studies have shown variations in outcomes and referral patterns in patients with less advanced heart failure, but national access to advanced therapies hasn’t been evaluated before, they point out.

 

In 2024, the Transplant Cardiology Working Group carried out its first National Advanced Heart Failure Audit Report for the UK and Ireland, with the aim of improving the quality of care for patients with advanced heart failure.

 

The Working Group looked specifically at inpatient and outpatient referral patterns for heart transplants and LVADs to the 7 adult heart transplant centres across the UK and Ireland between January and April inclusive.

 

Referral regions were stratified by the number of referrals per million of the population, ranging from under 3 referrals/million to more than 9 referrals/million for 16 to 69 year olds, the eligible age range for a heart transplant.

 

Between the beginning of January and the end of April, 416 patients were referred for a heart transplant or LVAD assessment, equal to around 100 such referrals a month.

 

Their average age was 52; two thirds (67%) were male, and around 1 in 4 (27%) were of minority ethnic background.

 

Nearly 1 in 3 referred patients weren’t suitable for advanced therapies at the time of assessment, however, because of potentially modifiable contraindications. These included poorly controlled diabetes, tobacco and/or alcohol use, and frailty, suggesting missed opportunities for earlier identification and management of these factors before referral, say the researchers.

 

The average number of referrals/million age-eligible population ranged from 0 to to 30.

But after adjusting for age eligibility, referral rates varied significantly by region.

 

Neither distance to the nearest transplant centre nor the deprivation level of the patient’s postcode influenced referral likelihood, suggesting that factors such as clinician awareness or local referral culture may be driving this variation, explain the researchers.

 

Women were less likely to be referred for life prolonging treatment than men, representing just 1 in 3 such referrals.

 

The findings highlight a significant gap between need and provision of advanced heart failure care, say the researchers. And based on epidemiological estimates from other studies, around 134,000 people in the UK may be living with advanced heart failure, most of whom will need good specialist palliative care, they point out.

 

The researchers acknowledge various limitations to their findings, including the use of postcode areas, which may not perfectly capture socioeconomic circumstances, and the lack of information on the full care pathway.

 

Nevertheless, they suggest: “These findings…indicate a need for increased education, co-produced, standardised, referral criteria and broader service access working across national devolved healthcare boundaries.”

 

They add: “These data likely also reflect a lack of standardisation of [heart failure] specialist services across the UK, with good provision in some areas and poor or no provision in others.”

 

They conclude: “These findings have important implications for national healthcare planning, including workforce development and allocation of public health resources.

 

“Further work is required to investigate barriers to referral, enhance clinician awareness, and optimise care pathways for patients in need of both life-prolonging and supportive therapies.”

 

Dr Rajiv Sankaranarayanan, of the British Cardiovascular Society, which co-owns Open Heart, comments: “This first national audit of advanced heart failure referrals highlights striking inequities in access to life-prolonging therapies across the UK and Ireland. Particularly concerning is the under-representation of women, who accounted for only one third of referrals, despite comparable disease burden.

 

“Collectively, this work provides a powerful call to standardise referral pathways, improve equity of access, and strengthen advanced heart failure infrastructure nationally to ensure that potentially life-saving therapies are available to all suitable patients, irrespective of postcode or sex.”