Showing posts with label how to grow. Show all posts
Showing posts with label how to grow. Show all posts

Friday, 4 April 2014

Grow Your Own Nutrition!

Okay, this post is going to be long, and I'm sorry about that, but I promise it will be absolutely worth it! During the winter I had the pleasure of reading two fascinating and wonderful books about soil nutrition and its impact on our health, and I've got to tell you why my approach to growing food will never be the same again.


The first book, which I just happened upon while idly browsing for free Kindle books one day, was Beyond Organic: Growing for Maximum Nutrition by Dr Jana Bogs. It kicks off with an analysis showing how vastly different the levels of vitamins and minerals could be in vegetables grown in different soils across the US: "not by just 10 or 20 percent, or even a two-fold difference..." but "...as great as 1,938ppm (parts per million) iron in some tomatoes as opposed to only 1ppm in other tomatoes of the same variety. This is nearly a 2000-fold difference!" Not rocket science, is it, to work out that more nutritious soils would grow more nutritious veggies? But I'd always assumed that a carrot was a carrot was a carrot, and any variations would be so small as to be irrelevant.

It's funny the way we often just go on doing things the way we were taught, without really thinking about them. For years I've believed it when I was told that all my soil needed was as much compost as I could make, plus a bit of horse manure or fish, blood and bone for a boost, and some lime every few years to keep the pH level where it should be. 

Nutrition levels in our food have dropped off by around 75% in the last hundred years or so. Concerns about depleted soils and nutrition deficiency leading to poor health in Americans were first brought to the US Senate way back in 1936. Between 1948 and 1991, Australia's 'Commonwealth Scientific and Industrial Research Organization' recorded an 80% drop in vitamin C in apples, an 82% drop in magnesium in broccoli, a 75% drop in iron in potatoes and an 89% drop in calcium in potatoes, and a similar American study showed that roughly half the vitamins in vegetables had significantly decreased between 1950 and 1999. An analysis on canned peaches over a hundred years old found that they contained more vitamins, even after a hundred years in a can, than today's canned peaches do! We'd need to eat a huge amount of today's fruit and veg to get the same nutrients we would have got from our 'five-a-day' a hundred or a thousand years ago. Is it any wonder we're all fat and sick??

Dr Bogs explains some of the complex interplay between nutrients in plants: minerals taken up by their roots activate enzymes which create the proteins, fats and vitamins we need. Though plants need only around 20 nutrients to survive (some say up to 42), if given a fuller range of nutrients they are capable of generating all the 50+ (some say up to 90) nutrients that we humans need. In other words, a vegetable might have everything it needs to reach maturity looking and tasting good, but that doesn't mean it has reached its full potential by producing all the nutrition it can, and should, contain: plants pass on a certain amount of nutrition from the soil (iron, copper, magnesium, calcium) but they're also little factories producing fatty acids, proteins and vitamins, as long as they have the building blocks to do so. You might have plied your plot with N:P:K fertilisers, but have you ever wondered whether your veggies get enough zinc, cobalt, boron, molybdenum or selenium? I hadn't!


The second book, The Intelligent Gardener: Growing Nutrient Dense Food by Steve Solomon, was even more eye-opening and exciting, not to mention more practical, offering a full hands-on approach to finding out what your soil needs and making it the best it can be, and I have to thank Douglas of @SweetPeaSalads for recommending it to me! This book busts some myths about the usual organic approach to feeding the soil, and offers a really good and easy-to-understand lesson in soil science. Solomon speaks from a broad range of experience from gardening on a variety of soils in several different parts of the world, and tells of healthier, tastier plants, a complete halt to fungal disease, and dramatic improvements in his own health when the soil on which he grows his food is properly nutritionally balanced. He also keeps a free online library - The Soil and Health Library - full of books, papers and studies on holistic agriculture, the connections between soil and health, and more, and he draws heavily on the works in this library to explain his theory and method.

He particularly highlights a study published in 1939 by one Weston Price called Nutrition and Physical Degeneration. Price visited remote communities around the world; tribes and isolated villages that as yet had no access to the mass-produced "foods of civilization", but survived on what they hunted, foraged or grew on a small scale locally with old methods. Despite his subjects having a wide variety of colours and shapes, of diets and of lifestyles, across the board their health was far, far better and when analysed, their foods were found to contain a huge amount more nutrition; for example, the primitive people's diets contained at least ten times more vitamins A and D than the American diet even back in the 1930s! Steve Solomon believes that the ideal human diet "has more to do with the soil food comes from than which foods are chosen"; some of these people ate no animal products while others ate virtually no vegetables, and others subsisted on just fish and oats supplemented with a few leafy greens. You can read Solomon's in-depth review of Price's book here, and I highly recommend it.

It would be impossible to share everything of importance in The Intelligent Gardener here - it's a fabulous and fascinating book - but here are my main take-aways:

Leaching is the factor with the biggest impact on nutrient density. Leaching is what happens when soil becomes saturated with rain, which dissolves a lot of the soil minerals and eventually drains downward carrying those minerals with it so that they end up in the subsoil or offsite altogether. Leaching is worse in climates where evaporation is also low - warmer weather slows leaching - and in climates where there is a lot of heavy rain in a short period of time. It's also a great deal worse where soil is left bare. Some nutrients leach out of soil more easily than others: calcium goes fast, while potassium tends to get left behind. This leads to imbalances.

Loss of soil microlife and organic matter is another major factor that harms nutrient density, since micro-organisms help to release the nutrients from the soil for use by plants, and high-quality humus holds a lot of nutrition in the soil and helps prevent leaching! This isn't generally a big problem for us organic food-gardeners, but industrial farming methods have devastated agricultural soils.

Compost isn't enough! Composting waste from the plot to feed the plot cannot provide all the nutrition the plot needs - unless the plot is already perfectly balanced. In fact, feeding a plot exclusively with compost from the plot will only magnify existing imbalances! There's a sustainability discussion to be had here: feeding your plot with compost alone is a permaculture ideal; a natural recycling process where we make the most of our waste to fulfil another need without importing costly additional materials from elsewhere. But Solomon explains that a soil can virtually sustain itself nutritionally - once it's properly healthy and balanced and cared for.

Remineralisation is the answer, Solomon says. Soils that have not been cared for properly have lost their ability to stay balanced, and their mineral content has been devastated. Solomon's own experiences and research (and Jana Bogs' studies) show that remineralised soil allows crops to reach their full genetic potential, enjoy proper health with much less chance of pest attack and disease, and provide the maximum nutrition for us.

Total Cation Exchange Capacity (TCEC) is a measurement (calculated in a lab) of how much minerals a soil can hold. Clay and humus particles in the soil have a tiny electrical charge that makes positively charged mineral particles in the soil attach to them - a bit like static cling. These positively charged particles are called cations, and include calcium, magnesium, potassium, sodium and others. The clay and humus particles have a set number of 'exchange points' where cations can stick, so a soil with lots of clay and humus has a high TCEC and a lot of these exchange points, and a light sandy soil with very little organic matter has a low TCEC and few exchange points. Some cations cling harder than others: calcium will always take first priority, magnesium second and the others will follow suit if there's space left. Solomon likens the TCEC to the number of shelves in a pantry. Calcium will fill up the shelves first and the others fill up the gaps in order. If the shelves are empty, they just fill up with air - hydrogen actually, from the soil water. As well as from the TCEC, plants can also get nutrition from the soil solution: mineral particles in the soil (or in slow-release fertilisers) breaking down slowly in tiny amounts and dissolving in the soil water. But that soon runs out and needs recharging. The soil solution is like plates on the table. When the plates are empty they can be refilled from the pantry (the TCEC). The bigger the pantry, the longer the meal goes on. Thus while a plant relying on nutrients in the soil solution would require very regular feeding to keep up with its needs, the TCEC buffers plants against nutritional ups and downs: with big reserves, their plates are never empty!

Balance, balance, balance. It's not about having a certain weight or volume of each nutrient in your soil, nor about throwing all the nutrients you can at it; too much of a good thing can lead to overdosing and cause even more problems. Instead, it's all about balance and the interplay between the nutrients.

Not all compost is made equal. As we all know, organic matter is vital for healthy soil. It improves texture, structure, and moisture retention. Most crucially, it feeds soil life, and it holds anions (negatively-charged mineral particles such as phosphorus, sulphur, nitrogen and boron) in the soil. But Solomon warns against adding too much organic matter and recommends only a 1/4" to 1/2" inch layer per year! Too much compost, he says, can overload the soil and its nutrients can end up just going to waste. He also warns that you never know what you're getting when you buy in compost (or organic waste to compost yourself); it may contain contaminants, or you could be importing unbalanced material that adds to your soil's imbalances without you knowing it. Most crucially, he teaches that much of our home-made compost (and shop-bought compost) is only partially decomposed organic matter, but our goal should be truly mature humus...

Humus and clay, clay and humus. These are the two most important components of soil, and they must both be present in abundance to hold a lot of nutrition. Humus is organic matter that has broken down to a point of stability and will change no further. It stays in the soil, instead of breaking down and disappearing. And while clay holds cations in the soil, humus holds both cations and anions. But great humus needs clay to form properly, so it will only form in your compost heap if you add enough clay to the heap as well. Solomon recommends adding around 5% by volume soil, of which 40% should be clay, to your compost heap. If your soil doesn't contain much clay, he recommends finding some, creating a clay slurry with water in a bucket, and sprinkling it generously between layers! Humus might also form in the ground when you add your partially-decomposed compost to a clayey soil - but when added to a light, low-clay soil, little humus will form, if any, and the organic matter will rot away to nothing, and so light sandy soils have great difficulty building up a useful level of organic matter.


Calcium is arguably the most important mineral in a garden soil, not because plants need a lot of it, but because it is critical for good soil structure: not enough calcium but too much of the other cations (especially magnesium) leads to a closed and airless soil structure in which microlife cannot thrive and other nutrients remain unavailable. Calcium is also the mineral most often lacking, as it's so easily leached away. A soil's TCEC should be around 68% full of calcium.

Magnesium takes second priority after calcium, when it comes to sticking to these exchange points in the soil, so it's the magnesium/calcium balance which will most often cause a problem. Magnesium is present in dolomite lime, often used by organic gardeners, so care must be taken to avoid an excessive build-up. Magnesium should fill around 12% of the soil's TCEC.

Potassium always rolls to the front of the pantry shelves, so if there's an abundance of it, plants use it first instead of reaching to the back for the other cations. When plants have lots of potassium they make lots of sugars and starches, but fewer proteins and vitamins and other more important nutrients. An excess of potassium, therefore, can boost yields, but those yields will be lower in nutrition than they should be, and higher in calories. Potassium can accumulate in soils because it doesn't leach away as much as other cations, and because imported composts made with hay, straw and woody wastes are often very high in it (potassium accumulates in the structural parts of plants; the trunks, barks and stems). I guess endlessly throwing N:P:K fertiliser at a plot might well add to this imbalance too, and presumably potassium is a particularly beneficial yield-booster for commercial growers whose primary concern is the size of the crop. Solomon recommends a soil balance that leaves potassium "just a little bit scarce" - just a few percent of the TCEC - for crops with the highest nutrition.

Sodium. We all know salt isn't good for most plants, but a small amount of sodium in soil is crucial and some crops need it. However, Solomon warns that growers using tapwater to irrigate their crops should be aware of the sodium level in their irrigation water. Annually, twelve inches of water containing 50ppm sodium would bring 200lbs per acre of sodium! There's something I'd never considered before! My local mains water contains an average 17ppm sodium, according to an analysis on my water company's website, but I have no idea how many inches of it I put on my soil... There should be around 1-2% sodium in the TCEC.

Phosphorus is a controversial soil amendment, since it is mined from the ground and we are steadily running out - but even a slight deficiency slows plant growth. Many agricultural soils are severely depleted of phosphorus and heavily dependent on phosphate fertilisers, but a healthy balanced soil can hold on to phosphorus for decades, because phosphorus is held in the soil by humus. If it fails to connect with humus, it soon connects with other minerals and becomes insoluble iron phosphate or calcium phosphate instead, and remains unavailable to plants long-term. Solomon suggests there should be around the same amount of phosphorus as potassium in soil, but that it should be added gradually over a number of years to ensure as little as possible goes to waste. Bonemeal provides a sustainable source, but comes with additional sodium and calcium too.

Nitrogen is crucial for healthy green growth: it's vital for production of the plant protein chlorophyll, which plants absolutely depend on for photosynthesis and energy. Dark leafy greens grown on fully mineralised soil can contain up to 20% protein - as much as beef steak! Nitrogen is released when soil organisms feed on organic matter - annually, every 1% of organic matter existing in a soil will provide 15-25lbs of nitrogen per acre, and to produce a good crop, 100lbs/acre is needed. So a healthy soil with 4-7% organic matter should have plenty of nitrogen available (although if it is hitherto dependent on nitrogen fertilisers, it might need weaning off them first). Solomon also advocates digging in leguminous green manures to provide nitrogen naturally, and points out that a healthy stand of field beans can provide the full 100lbs/acre needed.

Sulphur is a really interesting nutrient which helps plants to form amino acids (proteins) and enzymes, and boosts flavour. While we see sulphur as a fungicide and dust it on our plants as a defence, Solomon suggests that fungal disease is actually a symptom of sulphur deficiency, and describes how the onion root-rot on his plot completely disappeared when he rebalanced his soil. This is great news for me, as I've had to give up growing onions on my allotment thanks to my white rot problem! Sulphur is another anion, held in the soil by humus, and when it dissolves into the soil solution it bonds with cations to become a water soluble sulphate (iron sulphate, calcium sulphate, zinc sulphate etc.) Thus too much sulphur can leach cations from the soil - or it can be used, with care, to deliberately deal with a cation excess.


Micro-nutrients and trace nutrients are vital for maximum plant health and maximum nutrition too, and Solomon reveals the amounts needed for good balance and recommends amendments such as seaweed or Azomite for adding trace elements. Surprisingly, he's not such a fan of rock dust, and his analysis of it makes interesting reading.

pH. Wow, now this is important! pH is NOT the be-all-and-end-all of soil health, but a side-effect of the chemical and microbiological activity in the soil. It's not really as meaningful as we tend to think, and it fluctuates in a much more complex way than most of us know! pH stands for 'potential hydrogen' and is defined as the density of hydrogen atoms in water (or in a solution of a substance, such as soil). All the exchange points in the soil must always be filled up, so if there is no calcium, magnesium or other useful minerals around, hydrogen atoms from the water in the soil will stick instead, and the soil will contain a lot of hydrogen and have a low pH (an acidic soil). A soil rich in cations such as calcium and magnesium, on the other hand, has very little hydrogen and a high pH (an alkaline soil). So the pH of your soil can indicate how nutrient-rich it is - certainly an acid soil is lacking in cations. BUT a soil high in cations (alkaline) may have completely the wrong balance of cations and still benefit from liming, and in fact, the liming might not raise the pH further (since the new calcium ions knock off and replace the excess magnesium, potassium or sodium ions) but allow it to fall because correcting the balance allows the microlife to thrive again and kicks off the normal cycles of nitrate release and so on!

Soil testing is the only way to really know what's going on in a soil, and this is the method Solomon recommends to get the maximum potential out of any food-growing plot. The book explains how to take a soil sample and where to send it, and provides worksheets for readers to interpret the results and work out a perfect prescription of amendments for their soil. He also acknowledges that a soil test and a bunch of calculations won't be for everyone and might be severely over the top in a very small plot - so he offers a generic one-size-fits-all solution too, which he promises will greatly improve virtually all garden soils and increase its benefits year by year. He calls this his Complete Organic Fertiliser, or COF.

The Intelligent Gardener is a garden-changing book - maybe even a life-changing book - and I thoroughly recommend it to all home-growers. It's the kind of book that, once you've read and understood it, you just have to put into action. Steve Solomon believes that "many of our current social problems would also vanish by themselves, if only the mass average health of people were uplifted", and I'm inclined to agree, having seen the enormous variation possible in the nutrient content of our foods, and considering how far the impact of an unhealthy soil can reach into every part of our diets. If I'm going to grow my own food, then I want to do it properly and really get the best out of it. And if brilliant health is within my grasp (and my family's), just by changing what I feed my soil... well, no-one's getting in my way!

I intend to have my soil analysed and to remineralise it with The Intelligent Gardener's guidance, but not this year, with so much else going on. This year I'm trying Steve Solomon's Complete Organic Fertiliser (more on this in a future post), both on the allotment and on my beds at home, and I have high hopes for some excellent results.

I hope you're itching to go out and read this book for yourself right away! (I don't get anything for that, by the way.) But if money's tight or you're not convinced yet, there are three great interviews with Steve Solomon available free on the Ruminant Podcast website, here, here and here - do have a listen. And watch this space for more on Complete Organic Fertiliser...

Tuesday, 10 April 2012

How to Grow Tomatoes - 10 Simple Rules

I write this primarily for several friends who have taken, or are about to take, spare tomato plants off my hands and who have asked for full instructions on how to look after them, but hopefully lots more people will find it useful too! For some it can be daunting growing things for the first time, or growing things you've never grown before, but really most plants' needs are very simple and as long as you know what those needs are, it doesn't have to be daunting at all!

Here are the needs of a tomato plant:
  1. Warmth. Keep above 5C, preferably 10C, and only plant outside when the risk of frost has passed.
  2. Sun. Always keep them in a sunny location. 
  3. Good compost, which provides nutrients and retains moisture.
  4. Support (except with tumbling types), to help the plant bear the weight of its fruit.
  5. Dryness. Avoid getting the leaves wet where possible. A greenhouse is ideal but not by any means vital. Good pruning promotes air circulation which will help plants to dry quickly.
  6. Pollination. Outdoors, bees will do this for you. Indoors, just shake the flowers!
  7. Regular watering. Fruits need lots of water to swell, and irregular watering can cause fruit to split, so water the same amount every day as far as possible.
  8. Food. While not vital, applying tomato feed once a week can get you a better crop.
  9. Pruning. Pinch out extra shoots or 'suckers' from leaf joints to provide good air circulation and focus energy on fruit-production.
  10. Protection from fungal infection. Remove any leaves that drag on the soil and any that show signs of disease. Consider using a fungicidal spray (bought or homemade - see below) to protect your plants during humid weather.

That's really all you need to know, but if you want more, here's the long version...


Sowing Tomatoes

Tomato seeds need heat to germinate and must be sown indoors, anytime from January to early April, and kept above 10C. Fill small pots (3" is ideal) with clean, new compost, firm it down gently and water it. Then use your fingertip or a pencil to poke a shallow hole, 3-5mm deep, in the middle of the soil in each pot. Drop two seeds into each hole and add a pinch of fine compost or vermiculite to fill it in, or simply 'pinch' the hole carefully closed. Place in a propagator or cover the pots with plastic wrap to retain moisture until the seedlings have appeared - or simply water very lightly with a spray bottle twice a day to stop the surface drying out.

Seedlings will usually appear within a week, and definitely within two. Remove the plastic covering as soon as you see them and keep seedlings in a sunny place - if they don't have enough light they will reach for more and grow very tall and 'leggy' very quickly, which will give them weak stems unable to support the plants properly. When the temperature is above 10C during the day, it's ideal to put them outside in full sun, but keep them out of strong winds and heavy rain/hail showers until they're bigger, and don't forget to bring them in again at night! If two seeds have germinated in the same pot, wait until they grow their first true leaves then select the stronger one and pinch the weaker one off at soil level.

If you prefer, you can sow into smaller pots, cells, or a seed tray. When the plants are big enough to handle, though, they should be carefully transplanted to larger individual pots.

Ready to plant out...


Planting Out

Tomatoes don't like cold temperatures and frost will kill them, so keep them protected from cold but in plenty of sun until the risk of frost has passed. If you will be growing them outdoors, check the last-frost date in your area and wait until then before planting out. In my area, it's early- to mid-May. But if you plant them outside and then a late frost is forecast, don't panic - covering your plants gently with newspaper, a sheet or a towel (don't squash them!) is often enough to protect them. If you're going to be growing them in a heated greenhouse or conservatory, you will be able to plant them out much earlier - as soon as night temperatures in it are reliably around 10C. Plants should be at least 6"/15cm tall before planting out, and you should 'harden them off' for 7-10 days by putting them outside during the day, to gradually get them used to outdoor temperatures and winds.

Like virtually all fruiting crops, tomatoes need lots of sun, so pick a spot for them that gets at least six to eight hours of direct sun a day - the more the better.

I think the easiest way to grow tomatoes is in a growbag, and you can now get growbags specially formulated for growing veg in, which I highly recommend. Roll the growbag on its side to break up the compacted soil, put it in position, then cut holes for your plants and scoop the soil aside to make holes big enough for the tomato plants. Water your tomatoes before planting out to reduce stress, and try not to expose the roots to direct sunlight or leave them sitting around out of a pot for any longer than necessary. Pop them in the holes in the growbag, level and firm the soil around them, and water the growbag well.

See all the little hairs around the bottom of the tomato plant stem? If you plant it deeper than it was before, those hairs will grow into extra roots and give you an even stronger plant!

Tomatoes can also, of course, be grown in pots or in the soil in your garden - just make sure you use good compost to provide nutrients and retain moisture. Plant them around 12"/30cm apart.

Stick a cane in the ground as close as you can to each stem without damaging the roots. This is tricky in growbags as they are not very deep - try sticking the cane right through the bag into the ground, or check out the various types of cane support you can buy or make. As the plant grows taller, tie it loosely to the cane every 9-12" to support the weight of all that lovely fruit you're going to get! Another way to do it is to fix a stake or post every two or three plants, and tie strings between them that pass both sides of the stems. Look up 'Florida weave' for examples of this.


Caring For Your Plants

Uneven watering can cause fruit to split, so try to water regularly. Even in heavy rain, growbags and pots don't tend to catch that much water, so while your plants are fruiting, water them the same amount every day or two, whatever the weather. Growbags can be tricky to water - it sometimes just runs off. I remedy this by cutting the bottoms off plastic bottles and burying them neck down in the soil next to the plants - watering into these takes water straight to the roots where it's most needed, and allows the water to soak in gradually rather than running away.

  Splitting caused by irregular watering.

Many gardeners apply a tomato feed every week or two starting from when the first flowers open - this will encourage maximum fruiting. Using growbags already formulated for tomato-growing, I find this unnecessary, but who knows, maybe I'm missing out on an even bigger crop! Seaweed extract treatments are also particularly good for tomatoes.

Most tomato plants need pruning to keep plants focussed on fruit-production. (If your tomatoes are 'determinate', bush or tumbling varieties, they do not need pruning, but the ones I have given my friends are 'indeterminate' which means the plants will just branch out more and more, endlessly, so pruning is important.) Don't panic - it's very easy! What you're aiming for is a straight upright stem with only leaves, flower trusses and fruit trusses growing from it, like this:


When you see an extra shoot, or 'sucker', forming at the base of a leaf, like this...


Just pinch it off, like this...


If you do this carefully and don't damage the hairs on the stem, you can plant these prunings in pots of compost and grow whole new plants! (They may look like they're dying to start with, but they'll bounce back with a little TLC.) If you don't remove these extra shoots, your plant will end up with lots of extra branches and lots of extra leaf growth, will become tangled and unmanageable and will make your plant more susceptible to fungal infection...

Tomatoes are prone to a fungal disease called tomato blight, especially when grown outdoors, which starts as spots on the leaves, spreads to the stems and will eventually turn the fruit black. Rain carries airborne blight spores down to the leaves and soil, and the infection sets in during hot, humid spells. To decrease the chances of disease, try not to get the leaves wet when watering, and keep plants pruned so that they are well-ventilated and dry quickly after rain. If the lower leaves hang down to touch the soil, snip them off, and if any leaves turn yellow or develop brown or black patches, remove them too. Don't spread infection by touching infected parts and then touching non-infected parts, or by letting an infected plant touch others. If you think your plants may be infected, or during a period of more than 48 hours of hot, humid weather, spray your plants with a 1:1 milk and water solution, or 3 tbsps bicarbonate of soda and 1 tsp washing-up liquid to a gallon of water, to raise the alkalinity of the leaf surfaces and make it harder for fungi to take hold - or of course you could use a chemical fungicide. You can do this every week and after rain to prevent blight, or more often to slow its progess once infected. Spray in the evening or early morning, and always out of direct sunlight. Blightwatch.co.uk offers a free service to warn you when the weather conditions are just right for blight to hit your postcode so you can take precautions - give it a try!

 When black patches reach your plants' stems, you know it's blight.

If your indoor tomatoes are attacked by whitefly, grow basil around them - the flies hate it. Outdoor tomatoes don't tend to suffer much pest damage, but keep an eye out for slugs, snails, caterpillars and aphids just in case. Encouraging ladybirds in your garden is the most natural way to deal with aphids, but squishing them by hand is also very effective. Slugs, snails and caterpillars are best dealt with manually too - you'll need to go out after dark with a torch to catch slugs and snails - or you could use beer traps or organic slug pellets.

If you're growing tomatoes indoors, you will have to either open doors and windows wide during warm days to let pollinating insects in, or pollinate by hand. This is really easy - tomatoes are self pollinating, meaning they only need their own pollen to reach their own stigma, so it can be done simply by shaking flower trusses, flicking or blowing into the flowers, or by vibrating the flowers with the back of an electric toothbrush or an electric razor with the blade removed to mimic a buzzing bee! Do this every few days when flowers are opening. If you're growing outdoors, bees and other insects will do this for you. If you don't have many bees in your garden, you can attract them by growing more flowers! Here is a list of flowers which help to attract bees. Marigolds, poached-egg plant, poppies, borage, sunflowers and cornflowers are particularly good and easy to grow.


Harvesting

Harvest your tomatoes when they're fully red (if, that is, you're growing a red variety!), but try not to let any overripen on the plant, which may stall further fruiting. Keep your harvested tomatoes at room temperature - the fridge ruins their sweetness!

If you keep harvesting and pruning your plants, they'll keep producing right up until the first frosts around October or November. Enjoy them, and good luck!


And why not try saving your own seeds for more free tomato plants next year? Just click here and follow the instructions!
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