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Technology

A new standard for human midbrain organoids.

Made by machines, guided by the experts who built the protocol. No hands in the process, no hands in the data.

Whole-mount immunofluorescence of a human midbrain organoid, dense cell nuclei at the core with neuronal processes radiating to the edge.

01The platform

Human tissue, produced like an instrument reading.

The biology was never the bottleneck. The process was.

PEARL’s automated midbrain organoids (AMOs) are grown from human iPSC-derived small-molecule neural progenitor cells (smNPCs), directed towards midbrain identity by defined small-molecule patterning. None of that is new: it has been in the literature for years. What was missing was a way to run it the same way every time.

The difference is in how they are made. A single-cell suspension is dispensed by liquid handling into SBS 96 V-bottom plates (no Matrigel, no animal-derived matrix), and from there the organoid never leaves its well: patterned, matured, fixed, stained, cleared and imaged in place.

The pre-differentiated starting cells are why it is fast: smNPCs can only become neural tissue, so no maturation time is spent waiting for the culture to decide what it is. And because whole-mount immunostaining and confocal microscopy read the organoid intact, there is no sectioning and no reconstruction from a single plane.

One thing the process does not fix is the starting material. Because the route runs through smNPCs rather than through a single proprietary line, it can be run on any human iPSC line, including yours. If your programme rests on a particular donor background or a particular mutation, that is the line the organoids are made from, and the reproducibility is a property of the process rather than of the cells.

This is proprietary, patented technology as much as it is published science.

<3.6%

Intra-batch CV

In viability, against more than 50% commonly reported for conventional organoids.

20,000

Organoids/day, capacity

What one platform can handle, against roughly 200 per day for one person working by hand.

99.7%

Sample retention

Survive 30 days of culture; 96.5% survive transfer to imaging, 93.9% image acquisition.

30–35 days

To a screenable organoid

Against 60 to 90 days for standard protocols.

02Production workflow

Seeded, patterned and read out without being touched.

The organoid never leaves the well between seeding and readout. That is the whole idea.

Day −1 · Starting cells

Human iPSC-derived smNPCs in 2D culture, dissociated to a single-cell suspension.

Day 0 · Automated seeding

Dispensed into 96-well V-bottom plates by liquid handling. Matrix-free.

Day 2 · Ventral patterning

Defined small molecules and growth factors direct the aggregate towards midbrain identity.

Day 6 · Maturation

The organoid compacts and matures in the well it was seeded into. Growth tracks tightly between batches.

Treatment

Compound addition or other intervention, applied plate-wide at the timepoint the study calls for.

From day 35 · In-plate staining

Automated fixation and immunostaining without transferring the tissue: six days primary antibody, six days secondary.

Day 47 · Clearing

BABB tissue clearing, then whole-organoid image acquisition by high-content confocal microscopy.

Analysis & data

Quantitative image analysis, or other downstream molecular readouts including single-cell sequencing.

Close-up of an automated pipetting head, its tips loaded with pink culture medium, poised above the wells of a multiwell plate.
Every well, identically. The same dispense, the same volume, the same moment, ninety-six times over.

03Characterisation

What we measure, and how.

Measured on the intact organoid rather than on a section of it, at whatever depth a question requires, even down to single-cell level.

Viability

Measured per organoid. The spread across a batch is treated as a property of the process, not as noise to be averaged away: below 3.6% intra-batch CV.

Cellular composition

A high density of TH-positive dopaminergic neurons alongside the wider neural population, including glia. Transcriptional correlation against human fetal midbrain reaches 0.78 (Pearson).

Morphology

No necrotic core, and no neural rosettes: the organoids are matured past that stage. Both remove well-known sources of heterogeneity.

Function

Spontaneous, synchronised activity by calcium imaging from around day 30: evidence that the tissue is connected, not just alive.

Single-cell state

Single-cell RNA sequencing resolves which populations are present and what state they are in: the basis for the fetal-midbrain comparison, and available as a study readout.

Quality control

Each batch undergoes a strict, multi-modal release framework. We provide a Certificate of Analysis (CoA) covering morphological, molecular and functional metrics, so you screen on human biology, not batch-to-batch noise.

Which markers we stain for depends on the question; the panel is chosen per study rather than fixed. What does not change is that the tissue is stained and imaged whole: the organoid below is a single intact specimen, cleared and acquired in four channels at once, not a section of one.

Immunofluorescence of one intact human midbrain organoid in four channels shown side by side: the merged view, then DAPI, TH, Nestin and Sox2 separately. The lower row repeats each channel at higher magnification for the boxed region at the organoid's edge.
Cell-type diversity in a single intact organoid. DAPI, TH, Nestin and Sox2 imaged together; the lower row shows the boxed region at higher magnification. Scale bars 100 µm and 20 µm. A deeper characterisation of the organoids is given in Renner, Bruder et al., eLife 2020.

04Differentiation

How PEARL compares.

The key differences, at a glance.

Challenge Common in conventional systems PEARL approach
Variability Commonly reported above 50% CV Below 3.6% intra-batch CV in viability
Matrix Undefined animal-derived matrix (Matrigel), adding lot-to-lot variation Matrix-free formation from a single-cell suspension
Time to screen 60 to 90 days 30 to 35 days
Throughput Around 200 organoids per day, per person Around 20,000 organoids per day, per platform capacity
Assay quality Not usually reported Z′-factor of 0.92
Handling losses Organoids transferred between vessels to be fixed and stained Fixation, staining and clearing performed in-plate; 99.7% sample retention through culture
Format Bespoke vessels needing dedicated handling SBS 96 V-bottom plates on standard liquid handlers
Tissue structure Necrotic cores and neural rosettes are common Neither, by design
Analysis Often qualitative, or limited to a subset of organoids Whole-organoid imaging with quantitative readouts
Scroll the table sideways to compare →

Comparisons describe general characteristics of manually produced organoid systems, not any specific commercial product.

One difference is not in the table. The method is published in the open literature and backed by an intellectual property portfolio originating from the Max Planck Society, including granted and pending patents covering the automated, gel-free production and the progenitor cells they are grown from. Alongside it sits process knowledge that does not expire: more than 150 unpublished production parameters accumulated over thirteen years of research, and deepening with every production run.

[PEARL: CONFIRM LICENCE WORDING BEFORE LAUNCH]
Your read deck describes an exclusive licence option from the MPG with a term sheet in place. This page therefore says the patents „originate from“ the Max Planck Society and makes no claim about who holds the rights. Once the licence is signed, this can state it plainly, which is considerably stronger. Do not upgrade the wording before then.

See what this enables

See what this enables in practice.

The technology is built around one question: is the result you get real, or is it an artefact of how the model was made? If that distinction matters to your work, let's talk.