MelanoSense

RNA BIOSENSING RESEARCH

Small switches.
A new perspective on melanoma detection.

We are developing programmable RNA biosensors to recognise BRAF V600E, a mutation associated with melanoma. Our goal is to make molecular testing more accessible.

Research-stage technology. Not available for clinical use.

THE MOLECULAR SWITCHCONCEPT ANIMATION
RNA toehold switch conceptA closed RNA hairpin, complementary trigger binding, and a proposed reporter response. Use the numbered controls to explore each stage. Toehold regionRNA structureReporter
01 / 03

The RNA hairpin limits access to the translation initiation region in the GFP design.

Choose a component to explore its role.

Illustrative mechanism only. Selectivity and reporter performance require validation.

A student-led project at
The University of Queensland

Participating in the
Australasian SynBio Challenge 2026

ENGINEERING BIOLOGY WITH PURPOSE

01 / OUR APPROACH

A molecular signal
worth investigating.

What if a small RNA switch could help make molecular testing easier to access?

That question drives MelanoSense. We are investigating a biosensor that recognises mutation-bearing BRAF RNA and converts that interaction into a measurable response.

Our longer-term vision is a portable platform that could support molecular screening. First, we need to establish how reliably the sensor distinguishes its intended target from other RNA.

AccessibleLower assay complexity is a design goal.
PortableA compact readout is our long-term ambition.

02 / THE SCIENCE

RNA recognition.
A measurable response.

Engineered RNA structures can act as molecular switches. We are developing two reporter approaches around that recognition principle.

Choose your level of detail
THE TOEHOLD PRINCIPLECONCEPT DIAGRAM
Concept diagram: complementary BRAF trigger RNA binds a closed toehold switch, opening the structure and enabling a fluorescent protein reporter
GFP reporter concept from the MelanoSense project presentation. Illustration, not experimental data.
01

A folded switch

The engineered RNA forms a hairpin. In the GFP design, this structure limits access to the translation initiation region.

02

A matching trigger

Complementary target RNA is designed to bind the toehold region and open the switch.

03

A reporter response

The activated design enables a measurable output. Distinguishing mutant from wild-type RNA is the key question we are testing.

DESIGN A / FLUORESCENCE

A GFP signal

Target binding is designed to enable production of green fluorescent protein. This approach requires translation machinery and supports quantitative laboratory measurements.

TRANSLATION-DEPENDENT

DESIGN B / COLOUR

A G-quadruplex readout

Our proposed second design couples RNA recognition to G-quadruplex/hemin chemistry, aiming to produce a colour change without making a reporter protein.

TRANSLATION-INDEPENDENT CONCEPT

BRAF V600E is a molecular target, not a diagnosis on its own. The project’s intended role is future screening support; clinical usefulness remains to be established.

03 / DEVELOPMENT

Building the evidence,
step by step.

Our current work centres on switch design and laboratory validation. Each next stage depends on the evidence from the one before it.

01CURRENT FOCUS

Design & test

Design RNA switches and compare responses to mutant, wild-type, scrambled and no-trigger controls.

02VALIDATION PLAN

Characterise performance

Evaluate signal, background and concentration dependence, including performance in cell-free systems.

03FUTURE INTEGRATION

Explore a patch format

Investigate minimally invasive microneedle sampling, RNA recovery and a potential lateral-flow readout.

The ambition is accessibility.
The priority is evidence.

Sampling feasibility, RNA stability and integrated device performance still require testing. Microneedle and at-home applications remain future goals.

FUTURE DEVICE CONCEPT

A possible route
from skin to signal.

A proposed workflow, not a working clinical device. Select a stage to see the development question it introduces.

Can sampling recover enough intact target RNA?

Microneedles are a future minimally invasive sampling option. Recovery from a relevant sample source and target availability need to be established before integrating a patch.

04 / OUR TEAM

Different disciplines.
One shared question.

Six students bringing biotechnology, biomedical science and engineering together at The University of Queensland.

AB

Aanika Bray

Science & Biomedical Science

FH

Finn Hutchings

Chemical Engineering & Biotechnology

NJ

Nishkarsh Jain

Master of Biotechnology

PB

Pearl Batta

Master of Biotechnology

SR

Sanjai Ravichandran

Master of Biotechnology

TB

Tanya Shekhar Barua

Master of Biotechnology

PRINCIPAL INVESTIGATORDr Axayacatl GonzalezFollow our research on LinkedIn ↗

COMMON QUESTIONS

A closer look.

What we are developing, what we are testing and what comes next.

Can I use MelanoSense to test a skin lesion?

No. MelanoSense is a research-stage project and is not available for patient testing. The proposed technology has not been established as a clinical diagnostic test.

What does the sensor aim to recognise?

The current focus is BRAF RNA carrying the V600E mutation. Recognising a molecular target alone does not establish a melanoma diagnosis.

Why are there two reporter designs?

GFP provides a fluorescence-based laboratory readout that requires translation machinery. The proposed G-quadruplex/hemin route explores a colour response without producing a reporter protein. Each design requires its own validation.

Is the microneedle patch already working?

Patch sampling and lateral-flow integration are future development goals. RNA recovery, stability and integrated assay performance must first be investigated.

How can I collaborate with the team?

We welcome discussions about RNA biosensing, assay development and future translation. Email Sanjai Ravichandran to start a conversation.

Scientific foundations

Background research that informs the approach; these publications are not MelanoSense validation studies.

Green et al. (2014) · Toehold Switches: De-Novo-Designed Regulators of Gene Expression ↗Pardee et al. (2014) · Paper-Based Synthetic Gene Networks ↗

SPONSORSHIP & COLLABORATION

Help promising research
take its next step.

We welcome sponsors and collaborators who want to support student-led RNA biosensor research. Financial support, materials and specialist expertise can help us investigate the questions that matter next.

01

Sponsor the research

Discuss support for experimental validation, research materials and communicating our work through the Australasian SynBio Challenge.

02

Contribute in kind

Explore contributions such as DNA or RNA synthesis, assay reagents, consumables, equipment access or analytical services.

03

Collaborate with us

Bring expertise in RNA sensing, cell-free systems, assay characterisation, device integration or future clinical translation.

A PARTNERSHIP WITH PURPOSE

Contribute to the science.
Connect with its next generation.

Work with a multidisciplinary UQ student team investigating accessible molecular sensing. We can discuss a defined contribution, relevant project updates and opportunities to share expertise.

Recognition, engagement activities and any use of names or logos would be agreed together. Research outcomes cannot be guaranteed.

START A CONVERSATION

Tell us where
your interests meet ours.

Whether you have a specific contribution in mind or would like to hear more, help us understand your organisation and what you would like to explore.

  1. Introduce yourselfShare your interests and the type of support you are considering.
  2. Explore the fitDiscuss the research priorities and a useful scope together.
  3. Agree the next stepDefine contributions, expectations and any recognition before proceeding.
sanjai.ravichandran@student.uq.edu.au

Sanjai Ravichandran · Team contact

Connect with MelanoSense on LinkedIn ↗

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